* bfd-elf.h (elf_backend_name_local_section_symbols): New hook.
[binutils-gdb.git] / bfd / elfxx-mips.c
1 /* MIPS-specific support for ELF
2 Copyright 1993, 1994, 1995, 1996, 1997, 1998, 1999, 2000, 2001, 2002,
3 2003 Free Software Foundation, Inc.
4
5 Most of the information added by Ian Lance Taylor, Cygnus Support,
6 <ian@cygnus.com>.
7 N32/64 ABI support added by Mark Mitchell, CodeSourcery, LLC.
8 <mark@codesourcery.com>
9 Traditional MIPS targets support added by Koundinya.K, Dansk Data
10 Elektronik & Operations Research Group. <kk@ddeorg.soft.net>
11
12 This file is part of BFD, the Binary File Descriptor library.
13
14 This program is free software; you can redistribute it and/or modify
15 it under the terms of the GNU General Public License as published by
16 the Free Software Foundation; either version 2 of the License, or
17 (at your option) any later version.
18
19 This program is distributed in the hope that it will be useful,
20 but WITHOUT ANY WARRANTY; without even the implied warranty of
21 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
22 GNU General Public License for more details.
23
24 You should have received a copy of the GNU General Public License
25 along with this program; if not, write to the Free Software
26 Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. */
27
28 /* This file handles functionality common to the different MIPS ABI's. */
29
30 #include "bfd.h"
31 #include "sysdep.h"
32 #include "libbfd.h"
33 #include "libiberty.h"
34 #include "elf-bfd.h"
35 #include "elfxx-mips.h"
36 #include "elf/mips.h"
37
38 /* Get the ECOFF swapping routines. */
39 #include "coff/sym.h"
40 #include "coff/symconst.h"
41 #include "coff/ecoff.h"
42 #include "coff/mips.h"
43
44 #include "hashtab.h"
45
46 /* This structure is used to hold .got entries while estimating got
47 sizes. */
48 struct mips_got_entry
49 {
50 /* The input bfd in which the symbol is defined. */
51 bfd *abfd;
52 /* The index of the symbol, as stored in the relocation r_info, if
53 we have a local symbol; -1 otherwise. */
54 long symndx;
55 union
56 {
57 /* If abfd == NULL, an address that must be stored in the got. */
58 bfd_vma address;
59 /* If abfd != NULL && symndx != -1, the addend of the relocation
60 that should be added to the symbol value. */
61 bfd_vma addend;
62 /* If abfd != NULL && symndx == -1, the hash table entry
63 corresponding to a global symbol in the got (or, local, if
64 h->forced_local). */
65 struct mips_elf_link_hash_entry *h;
66 } d;
67 /* The offset from the beginning of the .got section to the entry
68 corresponding to this symbol+addend. If it's a global symbol
69 whose offset is yet to be decided, it's going to be -1. */
70 long gotidx;
71 };
72
73 /* This structure is used to hold .got information when linking. */
74
75 struct mips_got_info
76 {
77 /* The global symbol in the GOT with the lowest index in the dynamic
78 symbol table. */
79 struct elf_link_hash_entry *global_gotsym;
80 /* The number of global .got entries. */
81 unsigned int global_gotno;
82 /* The number of local .got entries. */
83 unsigned int local_gotno;
84 /* The number of local .got entries we have used. */
85 unsigned int assigned_gotno;
86 /* A hash table holding members of the got. */
87 struct htab *got_entries;
88 /* A hash table mapping input bfds to other mips_got_info. NULL
89 unless multi-got was necessary. */
90 struct htab *bfd2got;
91 /* In multi-got links, a pointer to the next got (err, rather, most
92 of the time, it points to the previous got). */
93 struct mips_got_info *next;
94 };
95
96 /* Map an input bfd to a got in a multi-got link. */
97
98 struct mips_elf_bfd2got_hash {
99 bfd *bfd;
100 struct mips_got_info *g;
101 };
102
103 /* Structure passed when traversing the bfd2got hash table, used to
104 create and merge bfd's gots. */
105
106 struct mips_elf_got_per_bfd_arg
107 {
108 /* A hashtable that maps bfds to gots. */
109 htab_t bfd2got;
110 /* The output bfd. */
111 bfd *obfd;
112 /* The link information. */
113 struct bfd_link_info *info;
114 /* A pointer to the primary got, i.e., the one that's going to get
115 the implicit relocations from DT_MIPS_LOCAL_GOTNO and
116 DT_MIPS_GOTSYM. */
117 struct mips_got_info *primary;
118 /* A non-primary got we're trying to merge with other input bfd's
119 gots. */
120 struct mips_got_info *current;
121 /* The maximum number of got entries that can be addressed with a
122 16-bit offset. */
123 unsigned int max_count;
124 /* The number of local and global entries in the primary got. */
125 unsigned int primary_count;
126 /* The number of local and global entries in the current got. */
127 unsigned int current_count;
128 };
129
130 /* Another structure used to pass arguments for got entries traversal. */
131
132 struct mips_elf_set_global_got_offset_arg
133 {
134 struct mips_got_info *g;
135 int value;
136 unsigned int needed_relocs;
137 struct bfd_link_info *info;
138 };
139
140 struct _mips_elf_section_data
141 {
142 struct bfd_elf_section_data elf;
143 union
144 {
145 struct mips_got_info *got_info;
146 bfd_byte *tdata;
147 } u;
148 };
149
150 #define mips_elf_section_data(sec) \
151 ((struct _mips_elf_section_data *) elf_section_data (sec))
152
153 /* This structure is passed to mips_elf_sort_hash_table_f when sorting
154 the dynamic symbols. */
155
156 struct mips_elf_hash_sort_data
157 {
158 /* The symbol in the global GOT with the lowest dynamic symbol table
159 index. */
160 struct elf_link_hash_entry *low;
161 /* The least dynamic symbol table index corresponding to a symbol
162 with a GOT entry. */
163 long min_got_dynindx;
164 /* The greatest dynamic symbol table index corresponding to a symbol
165 with a GOT entry that is not referenced (e.g., a dynamic symbol
166 with dynamic relocations pointing to it from non-primary GOTs). */
167 long max_unref_got_dynindx;
168 /* The greatest dynamic symbol table index not corresponding to a
169 symbol without a GOT entry. */
170 long max_non_got_dynindx;
171 };
172
173 /* The MIPS ELF linker needs additional information for each symbol in
174 the global hash table. */
175
176 struct mips_elf_link_hash_entry
177 {
178 struct elf_link_hash_entry root;
179
180 /* External symbol information. */
181 EXTR esym;
182
183 /* Number of R_MIPS_32, R_MIPS_REL32, or R_MIPS_64 relocs against
184 this symbol. */
185 unsigned int possibly_dynamic_relocs;
186
187 /* If the R_MIPS_32, R_MIPS_REL32, or R_MIPS_64 reloc is against
188 a readonly section. */
189 bfd_boolean readonly_reloc;
190
191 /* We must not create a stub for a symbol that has relocations
192 related to taking the function's address, i.e. any but
193 R_MIPS_CALL*16 ones -- see "MIPS ABI Supplement, 3rd Edition",
194 p. 4-20. */
195 bfd_boolean no_fn_stub;
196
197 /* If there is a stub that 32 bit functions should use to call this
198 16 bit function, this points to the section containing the stub. */
199 asection *fn_stub;
200
201 /* Whether we need the fn_stub; this is set if this symbol appears
202 in any relocs other than a 16 bit call. */
203 bfd_boolean need_fn_stub;
204
205 /* If there is a stub that 16 bit functions should use to call this
206 32 bit function, this points to the section containing the stub. */
207 asection *call_stub;
208
209 /* This is like the call_stub field, but it is used if the function
210 being called returns a floating point value. */
211 asection *call_fp_stub;
212
213 /* Are we forced local? .*/
214 bfd_boolean forced_local;
215 };
216
217 /* MIPS ELF linker hash table. */
218
219 struct mips_elf_link_hash_table
220 {
221 struct elf_link_hash_table root;
222 #if 0
223 /* We no longer use this. */
224 /* String section indices for the dynamic section symbols. */
225 bfd_size_type dynsym_sec_strindex[SIZEOF_MIPS_DYNSYM_SECNAMES];
226 #endif
227 /* The number of .rtproc entries. */
228 bfd_size_type procedure_count;
229 /* The size of the .compact_rel section (if SGI_COMPAT). */
230 bfd_size_type compact_rel_size;
231 /* This flag indicates that the value of DT_MIPS_RLD_MAP dynamic
232 entry is set to the address of __rld_obj_head as in IRIX5. */
233 bfd_boolean use_rld_obj_head;
234 /* This is the value of the __rld_map or __rld_obj_head symbol. */
235 bfd_vma rld_value;
236 /* This is set if we see any mips16 stub sections. */
237 bfd_boolean mips16_stubs_seen;
238 };
239
240 /* Structure used to pass information to mips_elf_output_extsym. */
241
242 struct extsym_info
243 {
244 bfd *abfd;
245 struct bfd_link_info *info;
246 struct ecoff_debug_info *debug;
247 const struct ecoff_debug_swap *swap;
248 bfd_boolean failed;
249 };
250
251 /* The names of the runtime procedure table symbols used on IRIX5. */
252
253 static const char * const mips_elf_dynsym_rtproc_names[] =
254 {
255 "_procedure_table",
256 "_procedure_string_table",
257 "_procedure_table_size",
258 NULL
259 };
260
261 /* These structures are used to generate the .compact_rel section on
262 IRIX5. */
263
264 typedef struct
265 {
266 unsigned long id1; /* Always one? */
267 unsigned long num; /* Number of compact relocation entries. */
268 unsigned long id2; /* Always two? */
269 unsigned long offset; /* The file offset of the first relocation. */
270 unsigned long reserved0; /* Zero? */
271 unsigned long reserved1; /* Zero? */
272 } Elf32_compact_rel;
273
274 typedef struct
275 {
276 bfd_byte id1[4];
277 bfd_byte num[4];
278 bfd_byte id2[4];
279 bfd_byte offset[4];
280 bfd_byte reserved0[4];
281 bfd_byte reserved1[4];
282 } Elf32_External_compact_rel;
283
284 typedef struct
285 {
286 unsigned int ctype : 1; /* 1: long 0: short format. See below. */
287 unsigned int rtype : 4; /* Relocation types. See below. */
288 unsigned int dist2to : 8;
289 unsigned int relvaddr : 19; /* (VADDR - vaddr of the previous entry)/ 4 */
290 unsigned long konst; /* KONST field. See below. */
291 unsigned long vaddr; /* VADDR to be relocated. */
292 } Elf32_crinfo;
293
294 typedef struct
295 {
296 unsigned int ctype : 1; /* 1: long 0: short format. See below. */
297 unsigned int rtype : 4; /* Relocation types. See below. */
298 unsigned int dist2to : 8;
299 unsigned int relvaddr : 19; /* (VADDR - vaddr of the previous entry)/ 4 */
300 unsigned long konst; /* KONST field. See below. */
301 } Elf32_crinfo2;
302
303 typedef struct
304 {
305 bfd_byte info[4];
306 bfd_byte konst[4];
307 bfd_byte vaddr[4];
308 } Elf32_External_crinfo;
309
310 typedef struct
311 {
312 bfd_byte info[4];
313 bfd_byte konst[4];
314 } Elf32_External_crinfo2;
315
316 /* These are the constants used to swap the bitfields in a crinfo. */
317
318 #define CRINFO_CTYPE (0x1)
319 #define CRINFO_CTYPE_SH (31)
320 #define CRINFO_RTYPE (0xf)
321 #define CRINFO_RTYPE_SH (27)
322 #define CRINFO_DIST2TO (0xff)
323 #define CRINFO_DIST2TO_SH (19)
324 #define CRINFO_RELVADDR (0x7ffff)
325 #define CRINFO_RELVADDR_SH (0)
326
327 /* A compact relocation info has long (3 words) or short (2 words)
328 formats. A short format doesn't have VADDR field and relvaddr
329 fields contains ((VADDR - vaddr of the previous entry) >> 2). */
330 #define CRF_MIPS_LONG 1
331 #define CRF_MIPS_SHORT 0
332
333 /* There are 4 types of compact relocation at least. The value KONST
334 has different meaning for each type:
335
336 (type) (konst)
337 CT_MIPS_REL32 Address in data
338 CT_MIPS_WORD Address in word (XXX)
339 CT_MIPS_GPHI_LO GP - vaddr
340 CT_MIPS_JMPAD Address to jump
341 */
342
343 #define CRT_MIPS_REL32 0xa
344 #define CRT_MIPS_WORD 0xb
345 #define CRT_MIPS_GPHI_LO 0xc
346 #define CRT_MIPS_JMPAD 0xd
347
348 #define mips_elf_set_cr_format(x,format) ((x).ctype = (format))
349 #define mips_elf_set_cr_type(x,type) ((x).rtype = (type))
350 #define mips_elf_set_cr_dist2to(x,v) ((x).dist2to = (v))
351 #define mips_elf_set_cr_relvaddr(x,d) ((x).relvaddr = (d)<<2)
352 \f
353 /* The structure of the runtime procedure descriptor created by the
354 loader for use by the static exception system. */
355
356 typedef struct runtime_pdr {
357 bfd_vma adr; /* Memory address of start of procedure. */
358 long regmask; /* Save register mask. */
359 long regoffset; /* Save register offset. */
360 long fregmask; /* Save floating point register mask. */
361 long fregoffset; /* Save floating point register offset. */
362 long frameoffset; /* Frame size. */
363 short framereg; /* Frame pointer register. */
364 short pcreg; /* Offset or reg of return pc. */
365 long irpss; /* Index into the runtime string table. */
366 long reserved;
367 struct exception_info *exception_info;/* Pointer to exception array. */
368 } RPDR, *pRPDR;
369 #define cbRPDR sizeof (RPDR)
370 #define rpdNil ((pRPDR) 0)
371 \f
372 static struct bfd_hash_entry *mips_elf_link_hash_newfunc
373 (struct bfd_hash_entry *, struct bfd_hash_table *, const char *);
374 static void ecoff_swap_rpdr_out
375 (bfd *, const RPDR *, struct rpdr_ext *);
376 static bfd_boolean mips_elf_create_procedure_table
377 (void *, bfd *, struct bfd_link_info *, asection *,
378 struct ecoff_debug_info *);
379 static bfd_boolean mips_elf_check_mips16_stubs
380 (struct mips_elf_link_hash_entry *, void *);
381 static void bfd_mips_elf32_swap_gptab_in
382 (bfd *, const Elf32_External_gptab *, Elf32_gptab *);
383 static void bfd_mips_elf32_swap_gptab_out
384 (bfd *, const Elf32_gptab *, Elf32_External_gptab *);
385 static void bfd_elf32_swap_compact_rel_out
386 (bfd *, const Elf32_compact_rel *, Elf32_External_compact_rel *);
387 static void bfd_elf32_swap_crinfo_out
388 (bfd *, const Elf32_crinfo *, Elf32_External_crinfo *);
389 static int sort_dynamic_relocs
390 (const void *, const void *);
391 static int sort_dynamic_relocs_64
392 (const void *, const void *);
393 static bfd_boolean mips_elf_output_extsym
394 (struct mips_elf_link_hash_entry *, void *);
395 static int gptab_compare
396 (const void *, const void *);
397 static asection *mips_elf_rel_dyn_section
398 (bfd *, bfd_boolean);
399 static asection *mips_elf_got_section
400 (bfd *, bfd_boolean);
401 static struct mips_got_info *mips_elf_got_info
402 (bfd *, asection **);
403 static long mips_elf_get_global_gotsym_index
404 (bfd *abfd);
405 static bfd_vma mips_elf_local_got_index
406 (bfd *, bfd *, struct bfd_link_info *, bfd_vma);
407 static bfd_vma mips_elf_global_got_index
408 (bfd *, bfd *, struct elf_link_hash_entry *);
409 static bfd_vma mips_elf_got_page
410 (bfd *, bfd *, struct bfd_link_info *, bfd_vma, bfd_vma *);
411 static bfd_vma mips_elf_got16_entry
412 (bfd *, bfd *, struct bfd_link_info *, bfd_vma, bfd_boolean);
413 static bfd_vma mips_elf_got_offset_from_index
414 (bfd *, bfd *, bfd *, bfd_vma);
415 static struct mips_got_entry *mips_elf_create_local_got_entry
416 (bfd *, bfd *, struct mips_got_info *, asection *, bfd_vma);
417 static bfd_boolean mips_elf_sort_hash_table
418 (struct bfd_link_info *, unsigned long);
419 static bfd_boolean mips_elf_sort_hash_table_f
420 (struct mips_elf_link_hash_entry *, void *);
421 static bfd_boolean mips_elf_record_local_got_symbol
422 (bfd *, long, bfd_vma, struct mips_got_info *);
423 static bfd_boolean mips_elf_record_global_got_symbol
424 (struct elf_link_hash_entry *, bfd *, struct bfd_link_info *,
425 struct mips_got_info *);
426 static const Elf_Internal_Rela *mips_elf_next_relocation
427 (bfd *, unsigned int, const Elf_Internal_Rela *, const Elf_Internal_Rela *);
428 static bfd_boolean mips_elf_local_relocation_p
429 (bfd *, const Elf_Internal_Rela *, asection **, bfd_boolean);
430 static bfd_boolean mips_elf_overflow_p
431 (bfd_vma, int);
432 static bfd_vma mips_elf_high
433 (bfd_vma);
434 static bfd_vma mips_elf_higher
435 (bfd_vma);
436 static bfd_vma mips_elf_highest
437 (bfd_vma);
438 static bfd_boolean mips_elf_create_compact_rel_section
439 (bfd *, struct bfd_link_info *);
440 static bfd_boolean mips_elf_create_got_section
441 (bfd *, struct bfd_link_info *, bfd_boolean);
442 static bfd_reloc_status_type mips_elf_calculate_relocation
443 (bfd *, bfd *, asection *, struct bfd_link_info *,
444 const Elf_Internal_Rela *, bfd_vma, reloc_howto_type *,
445 Elf_Internal_Sym *, asection **, bfd_vma *, const char **,
446 bfd_boolean *, bfd_boolean);
447 static bfd_vma mips_elf_obtain_contents
448 (reloc_howto_type *, const Elf_Internal_Rela *, bfd *, bfd_byte *);
449 static bfd_boolean mips_elf_perform_relocation
450 (struct bfd_link_info *, reloc_howto_type *, const Elf_Internal_Rela *,
451 bfd_vma, bfd *, asection *, bfd_byte *, bfd_boolean);
452 static bfd_boolean mips_elf_stub_section_p
453 (bfd *, asection *);
454 static void mips_elf_allocate_dynamic_relocations
455 (bfd *, unsigned int);
456 static bfd_boolean mips_elf_create_dynamic_relocation
457 (bfd *, struct bfd_link_info *, const Elf_Internal_Rela *,
458 struct mips_elf_link_hash_entry *, asection *, bfd_vma,
459 bfd_vma *, asection *);
460 static void mips_set_isa_flags
461 (bfd *);
462 static INLINE char *elf_mips_abi_name
463 (bfd *);
464 static void mips_elf_irix6_finish_dynamic_symbol
465 (bfd *, const char *, Elf_Internal_Sym *);
466 static bfd_boolean mips_mach_extends_p
467 (unsigned long, unsigned long);
468 static bfd_boolean mips_32bit_flags_p
469 (flagword);
470 static INLINE hashval_t mips_elf_hash_bfd_vma
471 (bfd_vma);
472 static hashval_t mips_elf_got_entry_hash
473 (const void *);
474 static int mips_elf_got_entry_eq
475 (const void *, const void *);
476
477 static bfd_boolean mips_elf_multi_got
478 (bfd *, struct bfd_link_info *, struct mips_got_info *,
479 asection *, bfd_size_type);
480 static hashval_t mips_elf_multi_got_entry_hash
481 (const void *);
482 static int mips_elf_multi_got_entry_eq
483 (const void *, const void *);
484 static hashval_t mips_elf_bfd2got_entry_hash
485 (const void *);
486 static int mips_elf_bfd2got_entry_eq
487 (const void *, const void *);
488 static int mips_elf_make_got_per_bfd
489 (void **, void *);
490 static int mips_elf_merge_gots
491 (void **, void *);
492 static int mips_elf_set_global_got_offset
493 (void **, void *);
494 static int mips_elf_set_no_stub
495 (void **, void *);
496 static int mips_elf_resolve_final_got_entry
497 (void **, void *);
498 static void mips_elf_resolve_final_got_entries
499 (struct mips_got_info *);
500 static bfd_vma mips_elf_adjust_gp
501 (bfd *, struct mips_got_info *, bfd *);
502 static struct mips_got_info *mips_elf_got_for_ibfd
503 (struct mips_got_info *, bfd *);
504
505 /* This will be used when we sort the dynamic relocation records. */
506 static bfd *reldyn_sorting_bfd;
507
508 /* Nonzero if ABFD is using the N32 ABI. */
509
510 #define ABI_N32_P(abfd) \
511 ((elf_elfheader (abfd)->e_flags & EF_MIPS_ABI2) != 0)
512
513 /* Nonzero if ABFD is using the N64 ABI. */
514 #define ABI_64_P(abfd) \
515 (get_elf_backend_data (abfd)->s->elfclass == ELFCLASS64)
516
517 /* Nonzero if ABFD is using NewABI conventions. */
518 #define NEWABI_P(abfd) (ABI_N32_P (abfd) || ABI_64_P (abfd))
519
520 /* The IRIX compatibility level we are striving for. */
521 #define IRIX_COMPAT(abfd) \
522 (get_elf_backend_data (abfd)->elf_backend_mips_irix_compat (abfd))
523
524 /* Whether we are trying to be compatible with IRIX at all. */
525 #define SGI_COMPAT(abfd) \
526 (IRIX_COMPAT (abfd) != ict_none)
527
528 /* The name of the options section. */
529 #define MIPS_ELF_OPTIONS_SECTION_NAME(abfd) \
530 (NEWABI_P (abfd) ? ".MIPS.options" : ".options")
531
532 /* The name of the stub section. */
533 #define MIPS_ELF_STUB_SECTION_NAME(abfd) \
534 (NEWABI_P (abfd) ? ".MIPS.stubs" : ".stub")
535
536 /* The size of an external REL relocation. */
537 #define MIPS_ELF_REL_SIZE(abfd) \
538 (get_elf_backend_data (abfd)->s->sizeof_rel)
539
540 /* The size of an external dynamic table entry. */
541 #define MIPS_ELF_DYN_SIZE(abfd) \
542 (get_elf_backend_data (abfd)->s->sizeof_dyn)
543
544 /* The size of a GOT entry. */
545 #define MIPS_ELF_GOT_SIZE(abfd) \
546 (get_elf_backend_data (abfd)->s->arch_size / 8)
547
548 /* The size of a symbol-table entry. */
549 #define MIPS_ELF_SYM_SIZE(abfd) \
550 (get_elf_backend_data (abfd)->s->sizeof_sym)
551
552 /* The default alignment for sections, as a power of two. */
553 #define MIPS_ELF_LOG_FILE_ALIGN(abfd) \
554 (get_elf_backend_data (abfd)->s->log_file_align)
555
556 /* Get word-sized data. */
557 #define MIPS_ELF_GET_WORD(abfd, ptr) \
558 (ABI_64_P (abfd) ? bfd_get_64 (abfd, ptr) : bfd_get_32 (abfd, ptr))
559
560 /* Put out word-sized data. */
561 #define MIPS_ELF_PUT_WORD(abfd, val, ptr) \
562 (ABI_64_P (abfd) \
563 ? bfd_put_64 (abfd, val, ptr) \
564 : bfd_put_32 (abfd, val, ptr))
565
566 /* Add a dynamic symbol table-entry. */
567 #ifdef BFD64
568 #define MIPS_ELF_ADD_DYNAMIC_ENTRY(info, tag, val) \
569 (ABI_64_P (elf_hash_table (info)->dynobj) \
570 ? bfd_elf64_add_dynamic_entry (info, tag, val) \
571 : bfd_elf32_add_dynamic_entry (info, tag, val))
572 #else
573 #define MIPS_ELF_ADD_DYNAMIC_ENTRY(info, tag, val) \
574 (ABI_64_P (elf_hash_table (info)->dynobj) \
575 ? (abort (), FALSE) \
576 : bfd_elf32_add_dynamic_entry (info, tag, val))
577 #endif
578
579 #define MIPS_ELF_RTYPE_TO_HOWTO(abfd, rtype, rela) \
580 (get_elf_backend_data (abfd)->elf_backend_mips_rtype_to_howto (rtype, rela))
581
582 /* Determine whether the internal relocation of index REL_IDX is REL
583 (zero) or RELA (non-zero). The assumption is that, if there are
584 two relocation sections for this section, one of them is REL and
585 the other is RELA. If the index of the relocation we're testing is
586 in range for the first relocation section, check that the external
587 relocation size is that for RELA. It is also assumed that, if
588 rel_idx is not in range for the first section, and this first
589 section contains REL relocs, then the relocation is in the second
590 section, that is RELA. */
591 #define MIPS_RELOC_RELA_P(abfd, sec, rel_idx) \
592 ((NUM_SHDR_ENTRIES (&elf_section_data (sec)->rel_hdr) \
593 * get_elf_backend_data (abfd)->s->int_rels_per_ext_rel \
594 > (bfd_vma)(rel_idx)) \
595 == (elf_section_data (sec)->rel_hdr.sh_entsize \
596 == (ABI_64_P (abfd) ? sizeof (Elf64_External_Rela) \
597 : sizeof (Elf32_External_Rela))))
598
599 /* In case we're on a 32-bit machine, construct a 64-bit "-1" value
600 from smaller values. Start with zero, widen, *then* decrement. */
601 #define MINUS_ONE (((bfd_vma)0) - 1)
602
603 /* The number of local .got entries we reserve. */
604 #define MIPS_RESERVED_GOTNO (2)
605
606 /* The offset of $gp from the beginning of the .got section. */
607 #define ELF_MIPS_GP_OFFSET(abfd) (0x7ff0)
608
609 /* The maximum size of the GOT for it to be addressable using 16-bit
610 offsets from $gp. */
611 #define MIPS_ELF_GOT_MAX_SIZE(abfd) (ELF_MIPS_GP_OFFSET(abfd) + 0x7fff)
612
613 /* Instructions which appear in a stub. */
614 #define STUB_LW(abfd) \
615 ((ABI_64_P (abfd) \
616 ? 0xdf998010 /* ld t9,0x8010(gp) */ \
617 : 0x8f998010)) /* lw t9,0x8010(gp) */
618 #define STUB_MOVE(abfd) \
619 ((ABI_64_P (abfd) \
620 ? 0x03e0782d /* daddu t7,ra */ \
621 : 0x03e07821)) /* addu t7,ra */
622 #define STUB_JALR 0x0320f809 /* jalr t9,ra */
623 #define STUB_LI16(abfd) \
624 ((ABI_64_P (abfd) \
625 ? 0x64180000 /* daddiu t8,zero,0 */ \
626 : 0x24180000)) /* addiu t8,zero,0 */
627 #define MIPS_FUNCTION_STUB_SIZE (16)
628
629 /* The name of the dynamic interpreter. This is put in the .interp
630 section. */
631
632 #define ELF_DYNAMIC_INTERPRETER(abfd) \
633 (ABI_N32_P (abfd) ? "/usr/lib32/libc.so.1" \
634 : ABI_64_P (abfd) ? "/usr/lib64/libc.so.1" \
635 : "/usr/lib/libc.so.1")
636
637 #ifdef BFD64
638 #define MNAME(bfd,pre,pos) \
639 (ABI_64_P (bfd) ? CONCAT4 (pre,64,_,pos) : CONCAT4 (pre,32,_,pos))
640 #define ELF_R_SYM(bfd, i) \
641 (ABI_64_P (bfd) ? ELF64_R_SYM (i) : ELF32_R_SYM (i))
642 #define ELF_R_TYPE(bfd, i) \
643 (ABI_64_P (bfd) ? ELF64_MIPS_R_TYPE (i) : ELF32_R_TYPE (i))
644 #define ELF_R_INFO(bfd, s, t) \
645 (ABI_64_P (bfd) ? ELF64_R_INFO (s, t) : ELF32_R_INFO (s, t))
646 #else
647 #define MNAME(bfd,pre,pos) CONCAT4 (pre,32,_,pos)
648 #define ELF_R_SYM(bfd, i) \
649 (ELF32_R_SYM (i))
650 #define ELF_R_TYPE(bfd, i) \
651 (ELF32_R_TYPE (i))
652 #define ELF_R_INFO(bfd, s, t) \
653 (ELF32_R_INFO (s, t))
654 #endif
655 \f
656 /* The mips16 compiler uses a couple of special sections to handle
657 floating point arguments.
658
659 Section names that look like .mips16.fn.FNNAME contain stubs that
660 copy floating point arguments from the fp regs to the gp regs and
661 then jump to FNNAME. If any 32 bit function calls FNNAME, the
662 call should be redirected to the stub instead. If no 32 bit
663 function calls FNNAME, the stub should be discarded. We need to
664 consider any reference to the function, not just a call, because
665 if the address of the function is taken we will need the stub,
666 since the address might be passed to a 32 bit function.
667
668 Section names that look like .mips16.call.FNNAME contain stubs
669 that copy floating point arguments from the gp regs to the fp
670 regs and then jump to FNNAME. If FNNAME is a 32 bit function,
671 then any 16 bit function that calls FNNAME should be redirected
672 to the stub instead. If FNNAME is not a 32 bit function, the
673 stub should be discarded.
674
675 .mips16.call.fp.FNNAME sections are similar, but contain stubs
676 which call FNNAME and then copy the return value from the fp regs
677 to the gp regs. These stubs store the return value in $18 while
678 calling FNNAME; any function which might call one of these stubs
679 must arrange to save $18 around the call. (This case is not
680 needed for 32 bit functions that call 16 bit functions, because
681 16 bit functions always return floating point values in both
682 $f0/$f1 and $2/$3.)
683
684 Note that in all cases FNNAME might be defined statically.
685 Therefore, FNNAME is not used literally. Instead, the relocation
686 information will indicate which symbol the section is for.
687
688 We record any stubs that we find in the symbol table. */
689
690 #define FN_STUB ".mips16.fn."
691 #define CALL_STUB ".mips16.call."
692 #define CALL_FP_STUB ".mips16.call.fp."
693 \f
694 /* Look up an entry in a MIPS ELF linker hash table. */
695
696 #define mips_elf_link_hash_lookup(table, string, create, copy, follow) \
697 ((struct mips_elf_link_hash_entry *) \
698 elf_link_hash_lookup (&(table)->root, (string), (create), \
699 (copy), (follow)))
700
701 /* Traverse a MIPS ELF linker hash table. */
702
703 #define mips_elf_link_hash_traverse(table, func, info) \
704 (elf_link_hash_traverse \
705 (&(table)->root, \
706 (bfd_boolean (*) (struct elf_link_hash_entry *, void *)) (func), \
707 (info)))
708
709 /* Get the MIPS ELF linker hash table from a link_info structure. */
710
711 #define mips_elf_hash_table(p) \
712 ((struct mips_elf_link_hash_table *) ((p)->hash))
713
714 /* Create an entry in a MIPS ELF linker hash table. */
715
716 static struct bfd_hash_entry *
717 mips_elf_link_hash_newfunc (struct bfd_hash_entry *entry,
718 struct bfd_hash_table *table, const char *string)
719 {
720 struct mips_elf_link_hash_entry *ret =
721 (struct mips_elf_link_hash_entry *) entry;
722
723 /* Allocate the structure if it has not already been allocated by a
724 subclass. */
725 if (ret == NULL)
726 ret = bfd_hash_allocate (table, sizeof (struct mips_elf_link_hash_entry));
727 if (ret == NULL)
728 return (struct bfd_hash_entry *) ret;
729
730 /* Call the allocation method of the superclass. */
731 ret = ((struct mips_elf_link_hash_entry *)
732 _bfd_elf_link_hash_newfunc ((struct bfd_hash_entry *) ret,
733 table, string));
734 if (ret != NULL)
735 {
736 /* Set local fields. */
737 memset (&ret->esym, 0, sizeof (EXTR));
738 /* We use -2 as a marker to indicate that the information has
739 not been set. -1 means there is no associated ifd. */
740 ret->esym.ifd = -2;
741 ret->possibly_dynamic_relocs = 0;
742 ret->readonly_reloc = FALSE;
743 ret->no_fn_stub = FALSE;
744 ret->fn_stub = NULL;
745 ret->need_fn_stub = FALSE;
746 ret->call_stub = NULL;
747 ret->call_fp_stub = NULL;
748 ret->forced_local = FALSE;
749 }
750
751 return (struct bfd_hash_entry *) ret;
752 }
753
754 bfd_boolean
755 _bfd_mips_elf_new_section_hook (bfd *abfd, asection *sec)
756 {
757 struct _mips_elf_section_data *sdata;
758 bfd_size_type amt = sizeof (*sdata);
759
760 sdata = bfd_zalloc (abfd, amt);
761 if (sdata == NULL)
762 return FALSE;
763 sec->used_by_bfd = sdata;
764
765 return _bfd_elf_new_section_hook (abfd, sec);
766 }
767 \f
768 /* Read ECOFF debugging information from a .mdebug section into a
769 ecoff_debug_info structure. */
770
771 bfd_boolean
772 _bfd_mips_elf_read_ecoff_info (bfd *abfd, asection *section,
773 struct ecoff_debug_info *debug)
774 {
775 HDRR *symhdr;
776 const struct ecoff_debug_swap *swap;
777 char *ext_hdr;
778
779 swap = get_elf_backend_data (abfd)->elf_backend_ecoff_debug_swap;
780 memset (debug, 0, sizeof (*debug));
781
782 ext_hdr = bfd_malloc (swap->external_hdr_size);
783 if (ext_hdr == NULL && swap->external_hdr_size != 0)
784 goto error_return;
785
786 if (! bfd_get_section_contents (abfd, section, ext_hdr, 0,
787 swap->external_hdr_size))
788 goto error_return;
789
790 symhdr = &debug->symbolic_header;
791 (*swap->swap_hdr_in) (abfd, ext_hdr, symhdr);
792
793 /* The symbolic header contains absolute file offsets and sizes to
794 read. */
795 #define READ(ptr, offset, count, size, type) \
796 if (symhdr->count == 0) \
797 debug->ptr = NULL; \
798 else \
799 { \
800 bfd_size_type amt = (bfd_size_type) size * symhdr->count; \
801 debug->ptr = bfd_malloc (amt); \
802 if (debug->ptr == NULL) \
803 goto error_return; \
804 if (bfd_seek (abfd, symhdr->offset, SEEK_SET) != 0 \
805 || bfd_bread (debug->ptr, amt, abfd) != amt) \
806 goto error_return; \
807 }
808
809 READ (line, cbLineOffset, cbLine, sizeof (unsigned char), unsigned char *);
810 READ (external_dnr, cbDnOffset, idnMax, swap->external_dnr_size, void *);
811 READ (external_pdr, cbPdOffset, ipdMax, swap->external_pdr_size, void *);
812 READ (external_sym, cbSymOffset, isymMax, swap->external_sym_size, void *);
813 READ (external_opt, cbOptOffset, ioptMax, swap->external_opt_size, void *);
814 READ (external_aux, cbAuxOffset, iauxMax, sizeof (union aux_ext),
815 union aux_ext *);
816 READ (ss, cbSsOffset, issMax, sizeof (char), char *);
817 READ (ssext, cbSsExtOffset, issExtMax, sizeof (char), char *);
818 READ (external_fdr, cbFdOffset, ifdMax, swap->external_fdr_size, void *);
819 READ (external_rfd, cbRfdOffset, crfd, swap->external_rfd_size, void *);
820 READ (external_ext, cbExtOffset, iextMax, swap->external_ext_size, void *);
821 #undef READ
822
823 debug->fdr = NULL;
824 debug->adjust = NULL;
825
826 return TRUE;
827
828 error_return:
829 if (ext_hdr != NULL)
830 free (ext_hdr);
831 if (debug->line != NULL)
832 free (debug->line);
833 if (debug->external_dnr != NULL)
834 free (debug->external_dnr);
835 if (debug->external_pdr != NULL)
836 free (debug->external_pdr);
837 if (debug->external_sym != NULL)
838 free (debug->external_sym);
839 if (debug->external_opt != NULL)
840 free (debug->external_opt);
841 if (debug->external_aux != NULL)
842 free (debug->external_aux);
843 if (debug->ss != NULL)
844 free (debug->ss);
845 if (debug->ssext != NULL)
846 free (debug->ssext);
847 if (debug->external_fdr != NULL)
848 free (debug->external_fdr);
849 if (debug->external_rfd != NULL)
850 free (debug->external_rfd);
851 if (debug->external_ext != NULL)
852 free (debug->external_ext);
853 return FALSE;
854 }
855 \f
856 /* Swap RPDR (runtime procedure table entry) for output. */
857
858 static void
859 ecoff_swap_rpdr_out (bfd *abfd, const RPDR *in, struct rpdr_ext *ex)
860 {
861 H_PUT_S32 (abfd, in->adr, ex->p_adr);
862 H_PUT_32 (abfd, in->regmask, ex->p_regmask);
863 H_PUT_32 (abfd, in->regoffset, ex->p_regoffset);
864 H_PUT_32 (abfd, in->fregmask, ex->p_fregmask);
865 H_PUT_32 (abfd, in->fregoffset, ex->p_fregoffset);
866 H_PUT_32 (abfd, in->frameoffset, ex->p_frameoffset);
867
868 H_PUT_16 (abfd, in->framereg, ex->p_framereg);
869 H_PUT_16 (abfd, in->pcreg, ex->p_pcreg);
870
871 H_PUT_32 (abfd, in->irpss, ex->p_irpss);
872 #if 0 /* FIXME */
873 H_PUT_S32 (abfd, in->exception_info, ex->p_exception_info);
874 #endif
875 }
876
877 /* Create a runtime procedure table from the .mdebug section. */
878
879 static bfd_boolean
880 mips_elf_create_procedure_table (void *handle, bfd *abfd,
881 struct bfd_link_info *info, asection *s,
882 struct ecoff_debug_info *debug)
883 {
884 const struct ecoff_debug_swap *swap;
885 HDRR *hdr = &debug->symbolic_header;
886 RPDR *rpdr, *rp;
887 struct rpdr_ext *erp;
888 void *rtproc;
889 struct pdr_ext *epdr;
890 struct sym_ext *esym;
891 char *ss, **sv;
892 char *str;
893 bfd_size_type size;
894 bfd_size_type count;
895 unsigned long sindex;
896 unsigned long i;
897 PDR pdr;
898 SYMR sym;
899 const char *no_name_func = _("static procedure (no name)");
900
901 epdr = NULL;
902 rpdr = NULL;
903 esym = NULL;
904 ss = NULL;
905 sv = NULL;
906
907 swap = get_elf_backend_data (abfd)->elf_backend_ecoff_debug_swap;
908
909 sindex = strlen (no_name_func) + 1;
910 count = hdr->ipdMax;
911 if (count > 0)
912 {
913 size = swap->external_pdr_size;
914
915 epdr = bfd_malloc (size * count);
916 if (epdr == NULL)
917 goto error_return;
918
919 if (! _bfd_ecoff_get_accumulated_pdr (handle, (bfd_byte *) epdr))
920 goto error_return;
921
922 size = sizeof (RPDR);
923 rp = rpdr = bfd_malloc (size * count);
924 if (rpdr == NULL)
925 goto error_return;
926
927 size = sizeof (char *);
928 sv = bfd_malloc (size * count);
929 if (sv == NULL)
930 goto error_return;
931
932 count = hdr->isymMax;
933 size = swap->external_sym_size;
934 esym = bfd_malloc (size * count);
935 if (esym == NULL)
936 goto error_return;
937
938 if (! _bfd_ecoff_get_accumulated_sym (handle, (bfd_byte *) esym))
939 goto error_return;
940
941 count = hdr->issMax;
942 ss = bfd_malloc (count);
943 if (ss == NULL)
944 goto error_return;
945 if (! _bfd_ecoff_get_accumulated_ss (handle, ss))
946 goto error_return;
947
948 count = hdr->ipdMax;
949 for (i = 0; i < (unsigned long) count; i++, rp++)
950 {
951 (*swap->swap_pdr_in) (abfd, epdr + i, &pdr);
952 (*swap->swap_sym_in) (abfd, &esym[pdr.isym], &sym);
953 rp->adr = sym.value;
954 rp->regmask = pdr.regmask;
955 rp->regoffset = pdr.regoffset;
956 rp->fregmask = pdr.fregmask;
957 rp->fregoffset = pdr.fregoffset;
958 rp->frameoffset = pdr.frameoffset;
959 rp->framereg = pdr.framereg;
960 rp->pcreg = pdr.pcreg;
961 rp->irpss = sindex;
962 sv[i] = ss + sym.iss;
963 sindex += strlen (sv[i]) + 1;
964 }
965 }
966
967 size = sizeof (struct rpdr_ext) * (count + 2) + sindex;
968 size = BFD_ALIGN (size, 16);
969 rtproc = bfd_alloc (abfd, size);
970 if (rtproc == NULL)
971 {
972 mips_elf_hash_table (info)->procedure_count = 0;
973 goto error_return;
974 }
975
976 mips_elf_hash_table (info)->procedure_count = count + 2;
977
978 erp = rtproc;
979 memset (erp, 0, sizeof (struct rpdr_ext));
980 erp++;
981 str = (char *) rtproc + sizeof (struct rpdr_ext) * (count + 2);
982 strcpy (str, no_name_func);
983 str += strlen (no_name_func) + 1;
984 for (i = 0; i < count; i++)
985 {
986 ecoff_swap_rpdr_out (abfd, rpdr + i, erp + i);
987 strcpy (str, sv[i]);
988 str += strlen (sv[i]) + 1;
989 }
990 H_PUT_S32 (abfd, -1, (erp + count)->p_adr);
991
992 /* Set the size and contents of .rtproc section. */
993 s->_raw_size = size;
994 s->contents = rtproc;
995
996 /* Skip this section later on (I don't think this currently
997 matters, but someday it might). */
998 s->link_order_head = NULL;
999
1000 if (epdr != NULL)
1001 free (epdr);
1002 if (rpdr != NULL)
1003 free (rpdr);
1004 if (esym != NULL)
1005 free (esym);
1006 if (ss != NULL)
1007 free (ss);
1008 if (sv != NULL)
1009 free (sv);
1010
1011 return TRUE;
1012
1013 error_return:
1014 if (epdr != NULL)
1015 free (epdr);
1016 if (rpdr != NULL)
1017 free (rpdr);
1018 if (esym != NULL)
1019 free (esym);
1020 if (ss != NULL)
1021 free (ss);
1022 if (sv != NULL)
1023 free (sv);
1024 return FALSE;
1025 }
1026
1027 /* Check the mips16 stubs for a particular symbol, and see if we can
1028 discard them. */
1029
1030 static bfd_boolean
1031 mips_elf_check_mips16_stubs (struct mips_elf_link_hash_entry *h,
1032 void *data ATTRIBUTE_UNUSED)
1033 {
1034 if (h->root.root.type == bfd_link_hash_warning)
1035 h = (struct mips_elf_link_hash_entry *) h->root.root.u.i.link;
1036
1037 if (h->fn_stub != NULL
1038 && ! h->need_fn_stub)
1039 {
1040 /* We don't need the fn_stub; the only references to this symbol
1041 are 16 bit calls. Clobber the size to 0 to prevent it from
1042 being included in the link. */
1043 h->fn_stub->_raw_size = 0;
1044 h->fn_stub->_cooked_size = 0;
1045 h->fn_stub->flags &= ~SEC_RELOC;
1046 h->fn_stub->reloc_count = 0;
1047 h->fn_stub->flags |= SEC_EXCLUDE;
1048 }
1049
1050 if (h->call_stub != NULL
1051 && h->root.other == STO_MIPS16)
1052 {
1053 /* We don't need the call_stub; this is a 16 bit function, so
1054 calls from other 16 bit functions are OK. Clobber the size
1055 to 0 to prevent it from being included in the link. */
1056 h->call_stub->_raw_size = 0;
1057 h->call_stub->_cooked_size = 0;
1058 h->call_stub->flags &= ~SEC_RELOC;
1059 h->call_stub->reloc_count = 0;
1060 h->call_stub->flags |= SEC_EXCLUDE;
1061 }
1062
1063 if (h->call_fp_stub != NULL
1064 && h->root.other == STO_MIPS16)
1065 {
1066 /* We don't need the call_stub; this is a 16 bit function, so
1067 calls from other 16 bit functions are OK. Clobber the size
1068 to 0 to prevent it from being included in the link. */
1069 h->call_fp_stub->_raw_size = 0;
1070 h->call_fp_stub->_cooked_size = 0;
1071 h->call_fp_stub->flags &= ~SEC_RELOC;
1072 h->call_fp_stub->reloc_count = 0;
1073 h->call_fp_stub->flags |= SEC_EXCLUDE;
1074 }
1075
1076 return TRUE;
1077 }
1078 \f
1079 bfd_reloc_status_type
1080 _bfd_mips_elf_gprel16_with_gp (bfd *abfd, asymbol *symbol,
1081 arelent *reloc_entry, asection *input_section,
1082 bfd_boolean relocatable, void *data, bfd_vma gp)
1083 {
1084 bfd_vma relocation;
1085 bfd_signed_vma val;
1086 bfd_reloc_status_type status;
1087
1088 if (bfd_is_com_section (symbol->section))
1089 relocation = 0;
1090 else
1091 relocation = symbol->value;
1092
1093 relocation += symbol->section->output_section->vma;
1094 relocation += symbol->section->output_offset;
1095
1096 if (reloc_entry->address > input_section->_cooked_size)
1097 return bfd_reloc_outofrange;
1098
1099 /* Set val to the offset into the section or symbol. */
1100 val = reloc_entry->addend;
1101
1102 _bfd_mips_elf_sign_extend (val, 16);
1103
1104 /* Adjust val for the final section location and GP value. If we
1105 are producing relocatable output, we don't want to do this for
1106 an external symbol. */
1107 if (! relocatable
1108 || (symbol->flags & BSF_SECTION_SYM) != 0)
1109 val += relocation - gp;
1110
1111 if (reloc_entry->howto->partial_inplace)
1112 {
1113 status = _bfd_relocate_contents (reloc_entry->howto, abfd, val,
1114 (bfd_byte *) data
1115 + reloc_entry->address);
1116 if (status != bfd_reloc_ok)
1117 return status;
1118 }
1119 else
1120 reloc_entry->addend = val;
1121
1122 if (relocatable)
1123 reloc_entry->address += input_section->output_offset;
1124
1125 return bfd_reloc_ok;
1126 }
1127
1128 /* Used to store a REL high-part relocation such as R_MIPS_HI16 or
1129 R_MIPS_GOT16. REL is the relocation, INPUT_SECTION is the section
1130 that contains the relocation field and DATA points to the start of
1131 INPUT_SECTION. */
1132
1133 struct mips_hi16
1134 {
1135 struct mips_hi16 *next;
1136 bfd_byte *data;
1137 asection *input_section;
1138 arelent rel;
1139 };
1140
1141 /* FIXME: This should not be a static variable. */
1142
1143 static struct mips_hi16 *mips_hi16_list;
1144
1145 /* A howto special_function for REL *HI16 relocations. We can only
1146 calculate the correct value once we've seen the partnering
1147 *LO16 relocation, so just save the information for later.
1148
1149 The ABI requires that the *LO16 immediately follow the *HI16.
1150 However, as a GNU extension, we permit an arbitrary number of
1151 *HI16s to be associated with a single *LO16. This significantly
1152 simplies the relocation handling in gcc. */
1153
1154 bfd_reloc_status_type
1155 _bfd_mips_elf_hi16_reloc (bfd *abfd ATTRIBUTE_UNUSED, arelent *reloc_entry,
1156 asymbol *symbol ATTRIBUTE_UNUSED, void *data,
1157 asection *input_section, bfd *output_bfd,
1158 char **error_message ATTRIBUTE_UNUSED)
1159 {
1160 struct mips_hi16 *n;
1161
1162 if (reloc_entry->address > input_section->_cooked_size)
1163 return bfd_reloc_outofrange;
1164
1165 n = bfd_malloc (sizeof *n);
1166 if (n == NULL)
1167 return bfd_reloc_outofrange;
1168
1169 n->next = mips_hi16_list;
1170 n->data = data;
1171 n->input_section = input_section;
1172 n->rel = *reloc_entry;
1173 mips_hi16_list = n;
1174
1175 if (output_bfd != NULL)
1176 reloc_entry->address += input_section->output_offset;
1177
1178 return bfd_reloc_ok;
1179 }
1180
1181 /* A howto special_function for REL R_MIPS_GOT16 relocations. This is just
1182 like any other 16-bit relocation when applied to global symbols, but is
1183 treated in the same as R_MIPS_HI16 when applied to local symbols. */
1184
1185 bfd_reloc_status_type
1186 _bfd_mips_elf_got16_reloc (bfd *abfd, arelent *reloc_entry, asymbol *symbol,
1187 void *data, asection *input_section,
1188 bfd *output_bfd, char **error_message)
1189 {
1190 if ((symbol->flags & (BSF_GLOBAL | BSF_WEAK)) != 0
1191 || bfd_is_und_section (bfd_get_section (symbol))
1192 || bfd_is_com_section (bfd_get_section (symbol)))
1193 /* The relocation is against a global symbol. */
1194 return _bfd_mips_elf_generic_reloc (abfd, reloc_entry, symbol, data,
1195 input_section, output_bfd,
1196 error_message);
1197
1198 return _bfd_mips_elf_hi16_reloc (abfd, reloc_entry, symbol, data,
1199 input_section, output_bfd, error_message);
1200 }
1201
1202 /* A howto special_function for REL *LO16 relocations. The *LO16 itself
1203 is a straightforward 16 bit inplace relocation, but we must deal with
1204 any partnering high-part relocations as well. */
1205
1206 bfd_reloc_status_type
1207 _bfd_mips_elf_lo16_reloc (bfd *abfd, arelent *reloc_entry, asymbol *symbol,
1208 void *data, asection *input_section,
1209 bfd *output_bfd, char **error_message)
1210 {
1211 bfd_vma vallo;
1212
1213 if (reloc_entry->address > input_section->_cooked_size)
1214 return bfd_reloc_outofrange;
1215
1216 vallo = bfd_get_32 (abfd, (bfd_byte *) data + reloc_entry->address);
1217 while (mips_hi16_list != NULL)
1218 {
1219 bfd_reloc_status_type ret;
1220 struct mips_hi16 *hi;
1221
1222 hi = mips_hi16_list;
1223
1224 /* R_MIPS_GOT16 relocations are something of a special case. We
1225 want to install the addend in the same way as for a R_MIPS_HI16
1226 relocation (with a rightshift of 16). However, since GOT16
1227 relocations can also be used with global symbols, their howto
1228 has a rightshift of 0. */
1229 if (hi->rel.howto->type == R_MIPS_GOT16)
1230 hi->rel.howto = MIPS_ELF_RTYPE_TO_HOWTO (abfd, R_MIPS_HI16, FALSE);
1231
1232 /* VALLO is a signed 16-bit number. Bias it by 0x8000 so that any
1233 carry or borrow will induce a change of +1 or -1 in the high part. */
1234 hi->rel.addend += (vallo + 0x8000) & 0xffff;
1235
1236 /* R_MIPS_GNU_REL_HI16 relocations are relative to the address of the
1237 lo16 relocation, not their own address. If we're calculating the
1238 final value, and hence subtracting the "PC", subtract the offset
1239 of the lo16 relocation from here. */
1240 if (output_bfd == NULL && hi->rel.howto->type == R_MIPS_GNU_REL_HI16)
1241 hi->rel.addend -= reloc_entry->address - hi->rel.address;
1242
1243 ret = _bfd_mips_elf_generic_reloc (abfd, &hi->rel, symbol, hi->data,
1244 hi->input_section, output_bfd,
1245 error_message);
1246 if (ret != bfd_reloc_ok)
1247 return ret;
1248
1249 mips_hi16_list = hi->next;
1250 free (hi);
1251 }
1252
1253 return _bfd_mips_elf_generic_reloc (abfd, reloc_entry, symbol, data,
1254 input_section, output_bfd,
1255 error_message);
1256 }
1257
1258 /* A generic howto special_function. This calculates and installs the
1259 relocation itself, thus avoiding the oft-discussed problems in
1260 bfd_perform_relocation and bfd_install_relocation. */
1261
1262 bfd_reloc_status_type
1263 _bfd_mips_elf_generic_reloc (bfd *abfd ATTRIBUTE_UNUSED, arelent *reloc_entry,
1264 asymbol *symbol, void *data ATTRIBUTE_UNUSED,
1265 asection *input_section, bfd *output_bfd,
1266 char **error_message ATTRIBUTE_UNUSED)
1267 {
1268 bfd_signed_vma val;
1269 bfd_reloc_status_type status;
1270 bfd_boolean relocatable;
1271
1272 relocatable = (output_bfd != NULL);
1273
1274 if (reloc_entry->address > input_section->_cooked_size)
1275 return bfd_reloc_outofrange;
1276
1277 /* Build up the field adjustment in VAL. */
1278 val = 0;
1279 if (!relocatable || (symbol->flags & BSF_SECTION_SYM) != 0)
1280 {
1281 /* Either we're calculating the final field value or we have a
1282 relocation against a section symbol. Add in the section's
1283 offset or address. */
1284 val += symbol->section->output_section->vma;
1285 val += symbol->section->output_offset;
1286 }
1287
1288 if (!relocatable)
1289 {
1290 /* We're calculating the final field value. Add in the symbol's value
1291 and, if pc-relative, subtract the address of the field itself. */
1292 val += symbol->value;
1293 if (reloc_entry->howto->pc_relative)
1294 {
1295 val -= input_section->output_section->vma;
1296 val -= input_section->output_offset;
1297 val -= reloc_entry->address;
1298 }
1299 }
1300
1301 /* VAL is now the final adjustment. If we're keeping this relocation
1302 in the output file, and if the relocation uses a separate addend,
1303 we just need to add VAL to that addend. Otherwise we need to add
1304 VAL to the relocation field itself. */
1305 if (relocatable && !reloc_entry->howto->partial_inplace)
1306 reloc_entry->addend += val;
1307 else
1308 {
1309 /* Add in the separate addend, if any. */
1310 val += reloc_entry->addend;
1311
1312 /* Add VAL to the relocation field. */
1313 status = _bfd_relocate_contents (reloc_entry->howto, abfd, val,
1314 (bfd_byte *) data
1315 + reloc_entry->address);
1316 if (status != bfd_reloc_ok)
1317 return status;
1318 }
1319
1320 if (relocatable)
1321 reloc_entry->address += input_section->output_offset;
1322
1323 return bfd_reloc_ok;
1324 }
1325 \f
1326 /* Swap an entry in a .gptab section. Note that these routines rely
1327 on the equivalence of the two elements of the union. */
1328
1329 static void
1330 bfd_mips_elf32_swap_gptab_in (bfd *abfd, const Elf32_External_gptab *ex,
1331 Elf32_gptab *in)
1332 {
1333 in->gt_entry.gt_g_value = H_GET_32 (abfd, ex->gt_entry.gt_g_value);
1334 in->gt_entry.gt_bytes = H_GET_32 (abfd, ex->gt_entry.gt_bytes);
1335 }
1336
1337 static void
1338 bfd_mips_elf32_swap_gptab_out (bfd *abfd, const Elf32_gptab *in,
1339 Elf32_External_gptab *ex)
1340 {
1341 H_PUT_32 (abfd, in->gt_entry.gt_g_value, ex->gt_entry.gt_g_value);
1342 H_PUT_32 (abfd, in->gt_entry.gt_bytes, ex->gt_entry.gt_bytes);
1343 }
1344
1345 static void
1346 bfd_elf32_swap_compact_rel_out (bfd *abfd, const Elf32_compact_rel *in,
1347 Elf32_External_compact_rel *ex)
1348 {
1349 H_PUT_32 (abfd, in->id1, ex->id1);
1350 H_PUT_32 (abfd, in->num, ex->num);
1351 H_PUT_32 (abfd, in->id2, ex->id2);
1352 H_PUT_32 (abfd, in->offset, ex->offset);
1353 H_PUT_32 (abfd, in->reserved0, ex->reserved0);
1354 H_PUT_32 (abfd, in->reserved1, ex->reserved1);
1355 }
1356
1357 static void
1358 bfd_elf32_swap_crinfo_out (bfd *abfd, const Elf32_crinfo *in,
1359 Elf32_External_crinfo *ex)
1360 {
1361 unsigned long l;
1362
1363 l = (((in->ctype & CRINFO_CTYPE) << CRINFO_CTYPE_SH)
1364 | ((in->rtype & CRINFO_RTYPE) << CRINFO_RTYPE_SH)
1365 | ((in->dist2to & CRINFO_DIST2TO) << CRINFO_DIST2TO_SH)
1366 | ((in->relvaddr & CRINFO_RELVADDR) << CRINFO_RELVADDR_SH));
1367 H_PUT_32 (abfd, l, ex->info);
1368 H_PUT_32 (abfd, in->konst, ex->konst);
1369 H_PUT_32 (abfd, in->vaddr, ex->vaddr);
1370 }
1371 \f
1372 /* A .reginfo section holds a single Elf32_RegInfo structure. These
1373 routines swap this structure in and out. They are used outside of
1374 BFD, so they are globally visible. */
1375
1376 void
1377 bfd_mips_elf32_swap_reginfo_in (bfd *abfd, const Elf32_External_RegInfo *ex,
1378 Elf32_RegInfo *in)
1379 {
1380 in->ri_gprmask = H_GET_32 (abfd, ex->ri_gprmask);
1381 in->ri_cprmask[0] = H_GET_32 (abfd, ex->ri_cprmask[0]);
1382 in->ri_cprmask[1] = H_GET_32 (abfd, ex->ri_cprmask[1]);
1383 in->ri_cprmask[2] = H_GET_32 (abfd, ex->ri_cprmask[2]);
1384 in->ri_cprmask[3] = H_GET_32 (abfd, ex->ri_cprmask[3]);
1385 in->ri_gp_value = H_GET_32 (abfd, ex->ri_gp_value);
1386 }
1387
1388 void
1389 bfd_mips_elf32_swap_reginfo_out (bfd *abfd, const Elf32_RegInfo *in,
1390 Elf32_External_RegInfo *ex)
1391 {
1392 H_PUT_32 (abfd, in->ri_gprmask, ex->ri_gprmask);
1393 H_PUT_32 (abfd, in->ri_cprmask[0], ex->ri_cprmask[0]);
1394 H_PUT_32 (abfd, in->ri_cprmask[1], ex->ri_cprmask[1]);
1395 H_PUT_32 (abfd, in->ri_cprmask[2], ex->ri_cprmask[2]);
1396 H_PUT_32 (abfd, in->ri_cprmask[3], ex->ri_cprmask[3]);
1397 H_PUT_32 (abfd, in->ri_gp_value, ex->ri_gp_value);
1398 }
1399
1400 /* In the 64 bit ABI, the .MIPS.options section holds register
1401 information in an Elf64_Reginfo structure. These routines swap
1402 them in and out. They are globally visible because they are used
1403 outside of BFD. These routines are here so that gas can call them
1404 without worrying about whether the 64 bit ABI has been included. */
1405
1406 void
1407 bfd_mips_elf64_swap_reginfo_in (bfd *abfd, const Elf64_External_RegInfo *ex,
1408 Elf64_Internal_RegInfo *in)
1409 {
1410 in->ri_gprmask = H_GET_32 (abfd, ex->ri_gprmask);
1411 in->ri_pad = H_GET_32 (abfd, ex->ri_pad);
1412 in->ri_cprmask[0] = H_GET_32 (abfd, ex->ri_cprmask[0]);
1413 in->ri_cprmask[1] = H_GET_32 (abfd, ex->ri_cprmask[1]);
1414 in->ri_cprmask[2] = H_GET_32 (abfd, ex->ri_cprmask[2]);
1415 in->ri_cprmask[3] = H_GET_32 (abfd, ex->ri_cprmask[3]);
1416 in->ri_gp_value = H_GET_64 (abfd, ex->ri_gp_value);
1417 }
1418
1419 void
1420 bfd_mips_elf64_swap_reginfo_out (bfd *abfd, const Elf64_Internal_RegInfo *in,
1421 Elf64_External_RegInfo *ex)
1422 {
1423 H_PUT_32 (abfd, in->ri_gprmask, ex->ri_gprmask);
1424 H_PUT_32 (abfd, in->ri_pad, ex->ri_pad);
1425 H_PUT_32 (abfd, in->ri_cprmask[0], ex->ri_cprmask[0]);
1426 H_PUT_32 (abfd, in->ri_cprmask[1], ex->ri_cprmask[1]);
1427 H_PUT_32 (abfd, in->ri_cprmask[2], ex->ri_cprmask[2]);
1428 H_PUT_32 (abfd, in->ri_cprmask[3], ex->ri_cprmask[3]);
1429 H_PUT_64 (abfd, in->ri_gp_value, ex->ri_gp_value);
1430 }
1431
1432 /* Swap in an options header. */
1433
1434 void
1435 bfd_mips_elf_swap_options_in (bfd *abfd, const Elf_External_Options *ex,
1436 Elf_Internal_Options *in)
1437 {
1438 in->kind = H_GET_8 (abfd, ex->kind);
1439 in->size = H_GET_8 (abfd, ex->size);
1440 in->section = H_GET_16 (abfd, ex->section);
1441 in->info = H_GET_32 (abfd, ex->info);
1442 }
1443
1444 /* Swap out an options header. */
1445
1446 void
1447 bfd_mips_elf_swap_options_out (bfd *abfd, const Elf_Internal_Options *in,
1448 Elf_External_Options *ex)
1449 {
1450 H_PUT_8 (abfd, in->kind, ex->kind);
1451 H_PUT_8 (abfd, in->size, ex->size);
1452 H_PUT_16 (abfd, in->section, ex->section);
1453 H_PUT_32 (abfd, in->info, ex->info);
1454 }
1455 \f
1456 /* This function is called via qsort() to sort the dynamic relocation
1457 entries by increasing r_symndx value. */
1458
1459 static int
1460 sort_dynamic_relocs (const void *arg1, const void *arg2)
1461 {
1462 Elf_Internal_Rela int_reloc1;
1463 Elf_Internal_Rela int_reloc2;
1464
1465 bfd_elf32_swap_reloc_in (reldyn_sorting_bfd, arg1, &int_reloc1);
1466 bfd_elf32_swap_reloc_in (reldyn_sorting_bfd, arg2, &int_reloc2);
1467
1468 return ELF32_R_SYM (int_reloc1.r_info) - ELF32_R_SYM (int_reloc2.r_info);
1469 }
1470
1471 /* Like sort_dynamic_relocs, but used for elf64 relocations. */
1472
1473 static int
1474 sort_dynamic_relocs_64 (const void *arg1, const void *arg2)
1475 {
1476 Elf_Internal_Rela int_reloc1[3];
1477 Elf_Internal_Rela int_reloc2[3];
1478
1479 (*get_elf_backend_data (reldyn_sorting_bfd)->s->swap_reloc_in)
1480 (reldyn_sorting_bfd, arg1, int_reloc1);
1481 (*get_elf_backend_data (reldyn_sorting_bfd)->s->swap_reloc_in)
1482 (reldyn_sorting_bfd, arg2, int_reloc2);
1483
1484 return (ELF64_R_SYM (int_reloc1[0].r_info)
1485 - ELF64_R_SYM (int_reloc2[0].r_info));
1486 }
1487
1488
1489 /* This routine is used to write out ECOFF debugging external symbol
1490 information. It is called via mips_elf_link_hash_traverse. The
1491 ECOFF external symbol information must match the ELF external
1492 symbol information. Unfortunately, at this point we don't know
1493 whether a symbol is required by reloc information, so the two
1494 tables may wind up being different. We must sort out the external
1495 symbol information before we can set the final size of the .mdebug
1496 section, and we must set the size of the .mdebug section before we
1497 can relocate any sections, and we can't know which symbols are
1498 required by relocation until we relocate the sections.
1499 Fortunately, it is relatively unlikely that any symbol will be
1500 stripped but required by a reloc. In particular, it can not happen
1501 when generating a final executable. */
1502
1503 static bfd_boolean
1504 mips_elf_output_extsym (struct mips_elf_link_hash_entry *h, void *data)
1505 {
1506 struct extsym_info *einfo = data;
1507 bfd_boolean strip;
1508 asection *sec, *output_section;
1509
1510 if (h->root.root.type == bfd_link_hash_warning)
1511 h = (struct mips_elf_link_hash_entry *) h->root.root.u.i.link;
1512
1513 if (h->root.indx == -2)
1514 strip = FALSE;
1515 else if (((h->root.elf_link_hash_flags & ELF_LINK_HASH_DEF_DYNAMIC) != 0
1516 || (h->root.elf_link_hash_flags & ELF_LINK_HASH_REF_DYNAMIC) != 0)
1517 && (h->root.elf_link_hash_flags & ELF_LINK_HASH_DEF_REGULAR) == 0
1518 && (h->root.elf_link_hash_flags & ELF_LINK_HASH_REF_REGULAR) == 0)
1519 strip = TRUE;
1520 else if (einfo->info->strip == strip_all
1521 || (einfo->info->strip == strip_some
1522 && bfd_hash_lookup (einfo->info->keep_hash,
1523 h->root.root.root.string,
1524 FALSE, FALSE) == NULL))
1525 strip = TRUE;
1526 else
1527 strip = FALSE;
1528
1529 if (strip)
1530 return TRUE;
1531
1532 if (h->esym.ifd == -2)
1533 {
1534 h->esym.jmptbl = 0;
1535 h->esym.cobol_main = 0;
1536 h->esym.weakext = 0;
1537 h->esym.reserved = 0;
1538 h->esym.ifd = ifdNil;
1539 h->esym.asym.value = 0;
1540 h->esym.asym.st = stGlobal;
1541
1542 if (h->root.root.type == bfd_link_hash_undefined
1543 || h->root.root.type == bfd_link_hash_undefweak)
1544 {
1545 const char *name;
1546
1547 /* Use undefined class. Also, set class and type for some
1548 special symbols. */
1549 name = h->root.root.root.string;
1550 if (strcmp (name, mips_elf_dynsym_rtproc_names[0]) == 0
1551 || strcmp (name, mips_elf_dynsym_rtproc_names[1]) == 0)
1552 {
1553 h->esym.asym.sc = scData;
1554 h->esym.asym.st = stLabel;
1555 h->esym.asym.value = 0;
1556 }
1557 else if (strcmp (name, mips_elf_dynsym_rtproc_names[2]) == 0)
1558 {
1559 h->esym.asym.sc = scAbs;
1560 h->esym.asym.st = stLabel;
1561 h->esym.asym.value =
1562 mips_elf_hash_table (einfo->info)->procedure_count;
1563 }
1564 else if (strcmp (name, "_gp_disp") == 0 && ! NEWABI_P (einfo->abfd))
1565 {
1566 h->esym.asym.sc = scAbs;
1567 h->esym.asym.st = stLabel;
1568 h->esym.asym.value = elf_gp (einfo->abfd);
1569 }
1570 else
1571 h->esym.asym.sc = scUndefined;
1572 }
1573 else if (h->root.root.type != bfd_link_hash_defined
1574 && h->root.root.type != bfd_link_hash_defweak)
1575 h->esym.asym.sc = scAbs;
1576 else
1577 {
1578 const char *name;
1579
1580 sec = h->root.root.u.def.section;
1581 output_section = sec->output_section;
1582
1583 /* When making a shared library and symbol h is the one from
1584 the another shared library, OUTPUT_SECTION may be null. */
1585 if (output_section == NULL)
1586 h->esym.asym.sc = scUndefined;
1587 else
1588 {
1589 name = bfd_section_name (output_section->owner, output_section);
1590
1591 if (strcmp (name, ".text") == 0)
1592 h->esym.asym.sc = scText;
1593 else if (strcmp (name, ".data") == 0)
1594 h->esym.asym.sc = scData;
1595 else if (strcmp (name, ".sdata") == 0)
1596 h->esym.asym.sc = scSData;
1597 else if (strcmp (name, ".rodata") == 0
1598 || strcmp (name, ".rdata") == 0)
1599 h->esym.asym.sc = scRData;
1600 else if (strcmp (name, ".bss") == 0)
1601 h->esym.asym.sc = scBss;
1602 else if (strcmp (name, ".sbss") == 0)
1603 h->esym.asym.sc = scSBss;
1604 else if (strcmp (name, ".init") == 0)
1605 h->esym.asym.sc = scInit;
1606 else if (strcmp (name, ".fini") == 0)
1607 h->esym.asym.sc = scFini;
1608 else
1609 h->esym.asym.sc = scAbs;
1610 }
1611 }
1612
1613 h->esym.asym.reserved = 0;
1614 h->esym.asym.index = indexNil;
1615 }
1616
1617 if (h->root.root.type == bfd_link_hash_common)
1618 h->esym.asym.value = h->root.root.u.c.size;
1619 else if (h->root.root.type == bfd_link_hash_defined
1620 || h->root.root.type == bfd_link_hash_defweak)
1621 {
1622 if (h->esym.asym.sc == scCommon)
1623 h->esym.asym.sc = scBss;
1624 else if (h->esym.asym.sc == scSCommon)
1625 h->esym.asym.sc = scSBss;
1626
1627 sec = h->root.root.u.def.section;
1628 output_section = sec->output_section;
1629 if (output_section != NULL)
1630 h->esym.asym.value = (h->root.root.u.def.value
1631 + sec->output_offset
1632 + output_section->vma);
1633 else
1634 h->esym.asym.value = 0;
1635 }
1636 else if ((h->root.elf_link_hash_flags & ELF_LINK_HASH_NEEDS_PLT) != 0)
1637 {
1638 struct mips_elf_link_hash_entry *hd = h;
1639 bfd_boolean no_fn_stub = h->no_fn_stub;
1640
1641 while (hd->root.root.type == bfd_link_hash_indirect)
1642 {
1643 hd = (struct mips_elf_link_hash_entry *)h->root.root.u.i.link;
1644 no_fn_stub = no_fn_stub || hd->no_fn_stub;
1645 }
1646
1647 if (!no_fn_stub)
1648 {
1649 /* Set type and value for a symbol with a function stub. */
1650 h->esym.asym.st = stProc;
1651 sec = hd->root.root.u.def.section;
1652 if (sec == NULL)
1653 h->esym.asym.value = 0;
1654 else
1655 {
1656 output_section = sec->output_section;
1657 if (output_section != NULL)
1658 h->esym.asym.value = (hd->root.plt.offset
1659 + sec->output_offset
1660 + output_section->vma);
1661 else
1662 h->esym.asym.value = 0;
1663 }
1664 #if 0 /* FIXME? */
1665 h->esym.ifd = 0;
1666 #endif
1667 }
1668 }
1669
1670 if (! bfd_ecoff_debug_one_external (einfo->abfd, einfo->debug, einfo->swap,
1671 h->root.root.root.string,
1672 &h->esym))
1673 {
1674 einfo->failed = TRUE;
1675 return FALSE;
1676 }
1677
1678 return TRUE;
1679 }
1680
1681 /* A comparison routine used to sort .gptab entries. */
1682
1683 static int
1684 gptab_compare (const void *p1, const void *p2)
1685 {
1686 const Elf32_gptab *a1 = p1;
1687 const Elf32_gptab *a2 = p2;
1688
1689 return a1->gt_entry.gt_g_value - a2->gt_entry.gt_g_value;
1690 }
1691 \f
1692 /* Functions to manage the got entry hash table. */
1693
1694 /* Use all 64 bits of a bfd_vma for the computation of a 32-bit
1695 hash number. */
1696
1697 static INLINE hashval_t
1698 mips_elf_hash_bfd_vma (bfd_vma addr)
1699 {
1700 #ifdef BFD64
1701 return addr + (addr >> 32);
1702 #else
1703 return addr;
1704 #endif
1705 }
1706
1707 /* got_entries only match if they're identical, except for gotidx, so
1708 use all fields to compute the hash, and compare the appropriate
1709 union members. */
1710
1711 static hashval_t
1712 mips_elf_got_entry_hash (const void *entry_)
1713 {
1714 const struct mips_got_entry *entry = (struct mips_got_entry *)entry_;
1715
1716 return entry->symndx
1717 + (! entry->abfd ? mips_elf_hash_bfd_vma (entry->d.address)
1718 : entry->abfd->id
1719 + (entry->symndx >= 0 ? mips_elf_hash_bfd_vma (entry->d.addend)
1720 : entry->d.h->root.root.root.hash));
1721 }
1722
1723 static int
1724 mips_elf_got_entry_eq (const void *entry1, const void *entry2)
1725 {
1726 const struct mips_got_entry *e1 = (struct mips_got_entry *)entry1;
1727 const struct mips_got_entry *e2 = (struct mips_got_entry *)entry2;
1728
1729 return e1->abfd == e2->abfd && e1->symndx == e2->symndx
1730 && (! e1->abfd ? e1->d.address == e2->d.address
1731 : e1->symndx >= 0 ? e1->d.addend == e2->d.addend
1732 : e1->d.h == e2->d.h);
1733 }
1734
1735 /* multi_got_entries are still a match in the case of global objects,
1736 even if the input bfd in which they're referenced differs, so the
1737 hash computation and compare functions are adjusted
1738 accordingly. */
1739
1740 static hashval_t
1741 mips_elf_multi_got_entry_hash (const void *entry_)
1742 {
1743 const struct mips_got_entry *entry = (struct mips_got_entry *)entry_;
1744
1745 return entry->symndx
1746 + (! entry->abfd
1747 ? mips_elf_hash_bfd_vma (entry->d.address)
1748 : entry->symndx >= 0
1749 ? (entry->abfd->id
1750 + mips_elf_hash_bfd_vma (entry->d.addend))
1751 : entry->d.h->root.root.root.hash);
1752 }
1753
1754 static int
1755 mips_elf_multi_got_entry_eq (const void *entry1, const void *entry2)
1756 {
1757 const struct mips_got_entry *e1 = (struct mips_got_entry *)entry1;
1758 const struct mips_got_entry *e2 = (struct mips_got_entry *)entry2;
1759
1760 return e1->symndx == e2->symndx
1761 && (e1->symndx >= 0 ? e1->abfd == e2->abfd && e1->d.addend == e2->d.addend
1762 : e1->abfd == NULL || e2->abfd == NULL
1763 ? e1->abfd == e2->abfd && e1->d.address == e2->d.address
1764 : e1->d.h == e2->d.h);
1765 }
1766 \f
1767 /* Returns the dynamic relocation section for DYNOBJ. */
1768
1769 static asection *
1770 mips_elf_rel_dyn_section (bfd *dynobj, bfd_boolean create_p)
1771 {
1772 static const char dname[] = ".rel.dyn";
1773 asection *sreloc;
1774
1775 sreloc = bfd_get_section_by_name (dynobj, dname);
1776 if (sreloc == NULL && create_p)
1777 {
1778 sreloc = bfd_make_section (dynobj, dname);
1779 if (sreloc == NULL
1780 || ! bfd_set_section_flags (dynobj, sreloc,
1781 (SEC_ALLOC
1782 | SEC_LOAD
1783 | SEC_HAS_CONTENTS
1784 | SEC_IN_MEMORY
1785 | SEC_LINKER_CREATED
1786 | SEC_READONLY))
1787 || ! bfd_set_section_alignment (dynobj, sreloc,
1788 MIPS_ELF_LOG_FILE_ALIGN (dynobj)))
1789 return NULL;
1790 }
1791 return sreloc;
1792 }
1793
1794 /* Returns the GOT section for ABFD. */
1795
1796 static asection *
1797 mips_elf_got_section (bfd *abfd, bfd_boolean maybe_excluded)
1798 {
1799 asection *sgot = bfd_get_section_by_name (abfd, ".got");
1800 if (sgot == NULL
1801 || (! maybe_excluded && (sgot->flags & SEC_EXCLUDE) != 0))
1802 return NULL;
1803 return sgot;
1804 }
1805
1806 /* Returns the GOT information associated with the link indicated by
1807 INFO. If SGOTP is non-NULL, it is filled in with the GOT
1808 section. */
1809
1810 static struct mips_got_info *
1811 mips_elf_got_info (bfd *abfd, asection **sgotp)
1812 {
1813 asection *sgot;
1814 struct mips_got_info *g;
1815
1816 sgot = mips_elf_got_section (abfd, TRUE);
1817 BFD_ASSERT (sgot != NULL);
1818 BFD_ASSERT (mips_elf_section_data (sgot) != NULL);
1819 g = mips_elf_section_data (sgot)->u.got_info;
1820 BFD_ASSERT (g != NULL);
1821
1822 if (sgotp)
1823 *sgotp = (sgot->flags & SEC_EXCLUDE) == 0 ? sgot : NULL;
1824
1825 return g;
1826 }
1827
1828 /* Obtain the lowest dynamic index of a symbol that was assigned a
1829 global GOT entry. */
1830 static long
1831 mips_elf_get_global_gotsym_index (bfd *abfd)
1832 {
1833 asection *sgot;
1834 struct mips_got_info *g;
1835
1836 if (abfd == NULL)
1837 return 0;
1838
1839 sgot = mips_elf_got_section (abfd, TRUE);
1840 if (sgot == NULL || mips_elf_section_data (sgot) == NULL)
1841 return 0;
1842
1843 g = mips_elf_section_data (sgot)->u.got_info;
1844 if (g == NULL || g->global_gotsym == NULL)
1845 return 0;
1846
1847 return g->global_gotsym->dynindx;
1848 }
1849
1850 /* Returns the GOT offset at which the indicated address can be found.
1851 If there is not yet a GOT entry for this value, create one. Returns
1852 -1 if no satisfactory GOT offset can be found. */
1853
1854 static bfd_vma
1855 mips_elf_local_got_index (bfd *abfd, bfd *ibfd, struct bfd_link_info *info,
1856 bfd_vma value)
1857 {
1858 asection *sgot;
1859 struct mips_got_info *g;
1860 struct mips_got_entry *entry;
1861
1862 g = mips_elf_got_info (elf_hash_table (info)->dynobj, &sgot);
1863
1864 entry = mips_elf_create_local_got_entry (abfd, ibfd, g, sgot, value);
1865 if (entry)
1866 return entry->gotidx;
1867 else
1868 return MINUS_ONE;
1869 }
1870
1871 /* Returns the GOT index for the global symbol indicated by H. */
1872
1873 static bfd_vma
1874 mips_elf_global_got_index (bfd *abfd, bfd *ibfd, struct elf_link_hash_entry *h)
1875 {
1876 bfd_vma index;
1877 asection *sgot;
1878 struct mips_got_info *g, *gg;
1879 long global_got_dynindx = 0;
1880
1881 gg = g = mips_elf_got_info (abfd, &sgot);
1882 if (g->bfd2got && ibfd)
1883 {
1884 struct mips_got_entry e, *p;
1885
1886 BFD_ASSERT (h->dynindx >= 0);
1887
1888 g = mips_elf_got_for_ibfd (g, ibfd);
1889 if (g->next != gg)
1890 {
1891 e.abfd = ibfd;
1892 e.symndx = -1;
1893 e.d.h = (struct mips_elf_link_hash_entry *)h;
1894
1895 p = htab_find (g->got_entries, &e);
1896
1897 BFD_ASSERT (p->gotidx > 0);
1898 return p->gotidx;
1899 }
1900 }
1901
1902 if (gg->global_gotsym != NULL)
1903 global_got_dynindx = gg->global_gotsym->dynindx;
1904
1905 /* Once we determine the global GOT entry with the lowest dynamic
1906 symbol table index, we must put all dynamic symbols with greater
1907 indices into the GOT. That makes it easy to calculate the GOT
1908 offset. */
1909 BFD_ASSERT (h->dynindx >= global_got_dynindx);
1910 index = ((h->dynindx - global_got_dynindx + g->local_gotno)
1911 * MIPS_ELF_GOT_SIZE (abfd));
1912 BFD_ASSERT (index < sgot->_raw_size);
1913
1914 return index;
1915 }
1916
1917 /* Find a GOT entry that is within 32KB of the VALUE. These entries
1918 are supposed to be placed at small offsets in the GOT, i.e.,
1919 within 32KB of GP. Return the index into the GOT for this page,
1920 and store the offset from this entry to the desired address in
1921 OFFSETP, if it is non-NULL. */
1922
1923 static bfd_vma
1924 mips_elf_got_page (bfd *abfd, bfd *ibfd, struct bfd_link_info *info,
1925 bfd_vma value, bfd_vma *offsetp)
1926 {
1927 asection *sgot;
1928 struct mips_got_info *g;
1929 bfd_vma index;
1930 struct mips_got_entry *entry;
1931
1932 g = mips_elf_got_info (elf_hash_table (info)->dynobj, &sgot);
1933
1934 entry = mips_elf_create_local_got_entry (abfd, ibfd, g, sgot,
1935 (value + 0x8000)
1936 & (~(bfd_vma)0xffff));
1937
1938 if (!entry)
1939 return MINUS_ONE;
1940
1941 index = entry->gotidx;
1942
1943 if (offsetp)
1944 *offsetp = value - entry->d.address;
1945
1946 return index;
1947 }
1948
1949 /* Find a GOT entry whose higher-order 16 bits are the same as those
1950 for value. Return the index into the GOT for this entry. */
1951
1952 static bfd_vma
1953 mips_elf_got16_entry (bfd *abfd, bfd *ibfd, struct bfd_link_info *info,
1954 bfd_vma value, bfd_boolean external)
1955 {
1956 asection *sgot;
1957 struct mips_got_info *g;
1958 struct mips_got_entry *entry;
1959
1960 if (! external)
1961 {
1962 /* Although the ABI says that it is "the high-order 16 bits" that we
1963 want, it is really the %high value. The complete value is
1964 calculated with a `addiu' of a LO16 relocation, just as with a
1965 HI16/LO16 pair. */
1966 value = mips_elf_high (value) << 16;
1967 }
1968
1969 g = mips_elf_got_info (elf_hash_table (info)->dynobj, &sgot);
1970
1971 entry = mips_elf_create_local_got_entry (abfd, ibfd, g, sgot, value);
1972 if (entry)
1973 return entry->gotidx;
1974 else
1975 return MINUS_ONE;
1976 }
1977
1978 /* Returns the offset for the entry at the INDEXth position
1979 in the GOT. */
1980
1981 static bfd_vma
1982 mips_elf_got_offset_from_index (bfd *dynobj, bfd *output_bfd,
1983 bfd *input_bfd, bfd_vma index)
1984 {
1985 asection *sgot;
1986 bfd_vma gp;
1987 struct mips_got_info *g;
1988
1989 g = mips_elf_got_info (dynobj, &sgot);
1990 gp = _bfd_get_gp_value (output_bfd)
1991 + mips_elf_adjust_gp (output_bfd, g, input_bfd);
1992
1993 return sgot->output_section->vma + sgot->output_offset + index - gp;
1994 }
1995
1996 /* Create a local GOT entry for VALUE. Return the index of the entry,
1997 or -1 if it could not be created. */
1998
1999 static struct mips_got_entry *
2000 mips_elf_create_local_got_entry (bfd *abfd, bfd *ibfd,
2001 struct mips_got_info *gg,
2002 asection *sgot, bfd_vma value)
2003 {
2004 struct mips_got_entry entry, **loc;
2005 struct mips_got_info *g;
2006
2007 entry.abfd = NULL;
2008 entry.symndx = -1;
2009 entry.d.address = value;
2010
2011 g = mips_elf_got_for_ibfd (gg, ibfd);
2012 if (g == NULL)
2013 {
2014 g = mips_elf_got_for_ibfd (gg, abfd);
2015 BFD_ASSERT (g != NULL);
2016 }
2017
2018 loc = (struct mips_got_entry **) htab_find_slot (g->got_entries, &entry,
2019 INSERT);
2020 if (*loc)
2021 return *loc;
2022
2023 entry.gotidx = MIPS_ELF_GOT_SIZE (abfd) * g->assigned_gotno++;
2024
2025 *loc = (struct mips_got_entry *)bfd_alloc (abfd, sizeof entry);
2026
2027 if (! *loc)
2028 return NULL;
2029
2030 memcpy (*loc, &entry, sizeof entry);
2031
2032 if (g->assigned_gotno >= g->local_gotno)
2033 {
2034 (*loc)->gotidx = -1;
2035 /* We didn't allocate enough space in the GOT. */
2036 (*_bfd_error_handler)
2037 (_("not enough GOT space for local GOT entries"));
2038 bfd_set_error (bfd_error_bad_value);
2039 return NULL;
2040 }
2041
2042 MIPS_ELF_PUT_WORD (abfd, value,
2043 (sgot->contents + entry.gotidx));
2044
2045 return *loc;
2046 }
2047
2048 /* Sort the dynamic symbol table so that symbols that need GOT entries
2049 appear towards the end. This reduces the amount of GOT space
2050 required. MAX_LOCAL is used to set the number of local symbols
2051 known to be in the dynamic symbol table. During
2052 _bfd_mips_elf_size_dynamic_sections, this value is 1. Afterward, the
2053 section symbols are added and the count is higher. */
2054
2055 static bfd_boolean
2056 mips_elf_sort_hash_table (struct bfd_link_info *info, unsigned long max_local)
2057 {
2058 struct mips_elf_hash_sort_data hsd;
2059 struct mips_got_info *g;
2060 bfd *dynobj;
2061
2062 dynobj = elf_hash_table (info)->dynobj;
2063
2064 g = mips_elf_got_info (dynobj, NULL);
2065
2066 hsd.low = NULL;
2067 hsd.max_unref_got_dynindx =
2068 hsd.min_got_dynindx = elf_hash_table (info)->dynsymcount
2069 /* In the multi-got case, assigned_gotno of the master got_info
2070 indicate the number of entries that aren't referenced in the
2071 primary GOT, but that must have entries because there are
2072 dynamic relocations that reference it. Since they aren't
2073 referenced, we move them to the end of the GOT, so that they
2074 don't prevent other entries that are referenced from getting
2075 too large offsets. */
2076 - (g->next ? g->assigned_gotno : 0);
2077 hsd.max_non_got_dynindx = max_local;
2078 mips_elf_link_hash_traverse (((struct mips_elf_link_hash_table *)
2079 elf_hash_table (info)),
2080 mips_elf_sort_hash_table_f,
2081 &hsd);
2082
2083 /* There should have been enough room in the symbol table to
2084 accommodate both the GOT and non-GOT symbols. */
2085 BFD_ASSERT (hsd.max_non_got_dynindx <= hsd.min_got_dynindx);
2086 BFD_ASSERT ((unsigned long)hsd.max_unref_got_dynindx
2087 <= elf_hash_table (info)->dynsymcount);
2088
2089 /* Now we know which dynamic symbol has the lowest dynamic symbol
2090 table index in the GOT. */
2091 g->global_gotsym = hsd.low;
2092
2093 return TRUE;
2094 }
2095
2096 /* If H needs a GOT entry, assign it the highest available dynamic
2097 index. Otherwise, assign it the lowest available dynamic
2098 index. */
2099
2100 static bfd_boolean
2101 mips_elf_sort_hash_table_f (struct mips_elf_link_hash_entry *h, void *data)
2102 {
2103 struct mips_elf_hash_sort_data *hsd = data;
2104
2105 if (h->root.root.type == bfd_link_hash_warning)
2106 h = (struct mips_elf_link_hash_entry *) h->root.root.u.i.link;
2107
2108 /* Symbols without dynamic symbol table entries aren't interesting
2109 at all. */
2110 if (h->root.dynindx == -1)
2111 return TRUE;
2112
2113 /* Global symbols that need GOT entries that are not explicitly
2114 referenced are marked with got offset 2. Those that are
2115 referenced get a 1, and those that don't need GOT entries get
2116 -1. */
2117 if (h->root.got.offset == 2)
2118 {
2119 if (hsd->max_unref_got_dynindx == hsd->min_got_dynindx)
2120 hsd->low = (struct elf_link_hash_entry *) h;
2121 h->root.dynindx = hsd->max_unref_got_dynindx++;
2122 }
2123 else if (h->root.got.offset != 1)
2124 h->root.dynindx = hsd->max_non_got_dynindx++;
2125 else
2126 {
2127 h->root.dynindx = --hsd->min_got_dynindx;
2128 hsd->low = (struct elf_link_hash_entry *) h;
2129 }
2130
2131 return TRUE;
2132 }
2133
2134 /* If H is a symbol that needs a global GOT entry, but has a dynamic
2135 symbol table index lower than any we've seen to date, record it for
2136 posterity. */
2137
2138 static bfd_boolean
2139 mips_elf_record_global_got_symbol (struct elf_link_hash_entry *h,
2140 bfd *abfd, struct bfd_link_info *info,
2141 struct mips_got_info *g)
2142 {
2143 struct mips_got_entry entry, **loc;
2144
2145 /* A global symbol in the GOT must also be in the dynamic symbol
2146 table. */
2147 if (h->dynindx == -1)
2148 {
2149 switch (ELF_ST_VISIBILITY (h->other))
2150 {
2151 case STV_INTERNAL:
2152 case STV_HIDDEN:
2153 _bfd_mips_elf_hide_symbol (info, h, TRUE);
2154 break;
2155 }
2156 if (!bfd_elf32_link_record_dynamic_symbol (info, h))
2157 return FALSE;
2158 }
2159
2160 entry.abfd = abfd;
2161 entry.symndx = -1;
2162 entry.d.h = (struct mips_elf_link_hash_entry *) h;
2163
2164 loc = (struct mips_got_entry **) htab_find_slot (g->got_entries, &entry,
2165 INSERT);
2166
2167 /* If we've already marked this entry as needing GOT space, we don't
2168 need to do it again. */
2169 if (*loc)
2170 return TRUE;
2171
2172 *loc = (struct mips_got_entry *)bfd_alloc (abfd, sizeof entry);
2173
2174 if (! *loc)
2175 return FALSE;
2176
2177 entry.gotidx = -1;
2178 memcpy (*loc, &entry, sizeof entry);
2179
2180 if (h->got.offset != MINUS_ONE)
2181 return TRUE;
2182
2183 /* By setting this to a value other than -1, we are indicating that
2184 there needs to be a GOT entry for H. Avoid using zero, as the
2185 generic ELF copy_indirect_symbol tests for <= 0. */
2186 h->got.offset = 1;
2187
2188 return TRUE;
2189 }
2190
2191 /* Reserve space in G for a GOT entry containing the value of symbol
2192 SYMNDX in input bfd ABDF, plus ADDEND. */
2193
2194 static bfd_boolean
2195 mips_elf_record_local_got_symbol (bfd *abfd, long symndx, bfd_vma addend,
2196 struct mips_got_info *g)
2197 {
2198 struct mips_got_entry entry, **loc;
2199
2200 entry.abfd = abfd;
2201 entry.symndx = symndx;
2202 entry.d.addend = addend;
2203 loc = (struct mips_got_entry **)
2204 htab_find_slot (g->got_entries, &entry, INSERT);
2205
2206 if (*loc)
2207 return TRUE;
2208
2209 entry.gotidx = g->local_gotno++;
2210
2211 *loc = (struct mips_got_entry *)bfd_alloc (abfd, sizeof entry);
2212
2213 if (! *loc)
2214 return FALSE;
2215
2216 memcpy (*loc, &entry, sizeof entry);
2217
2218 return TRUE;
2219 }
2220 \f
2221 /* Compute the hash value of the bfd in a bfd2got hash entry. */
2222
2223 static hashval_t
2224 mips_elf_bfd2got_entry_hash (const void *entry_)
2225 {
2226 const struct mips_elf_bfd2got_hash *entry
2227 = (struct mips_elf_bfd2got_hash *)entry_;
2228
2229 return entry->bfd->id;
2230 }
2231
2232 /* Check whether two hash entries have the same bfd. */
2233
2234 static int
2235 mips_elf_bfd2got_entry_eq (const void *entry1, const void *entry2)
2236 {
2237 const struct mips_elf_bfd2got_hash *e1
2238 = (const struct mips_elf_bfd2got_hash *)entry1;
2239 const struct mips_elf_bfd2got_hash *e2
2240 = (const struct mips_elf_bfd2got_hash *)entry2;
2241
2242 return e1->bfd == e2->bfd;
2243 }
2244
2245 /* In a multi-got link, determine the GOT to be used for IBDF. G must
2246 be the master GOT data. */
2247
2248 static struct mips_got_info *
2249 mips_elf_got_for_ibfd (struct mips_got_info *g, bfd *ibfd)
2250 {
2251 struct mips_elf_bfd2got_hash e, *p;
2252
2253 if (! g->bfd2got)
2254 return g;
2255
2256 e.bfd = ibfd;
2257 p = htab_find (g->bfd2got, &e);
2258 return p ? p->g : NULL;
2259 }
2260
2261 /* Create one separate got for each bfd that has entries in the global
2262 got, such that we can tell how many local and global entries each
2263 bfd requires. */
2264
2265 static int
2266 mips_elf_make_got_per_bfd (void **entryp, void *p)
2267 {
2268 struct mips_got_entry *entry = (struct mips_got_entry *)*entryp;
2269 struct mips_elf_got_per_bfd_arg *arg = (struct mips_elf_got_per_bfd_arg *)p;
2270 htab_t bfd2got = arg->bfd2got;
2271 struct mips_got_info *g;
2272 struct mips_elf_bfd2got_hash bfdgot_entry, *bfdgot;
2273 void **bfdgotp;
2274
2275 /* Find the got_info for this GOT entry's input bfd. Create one if
2276 none exists. */
2277 bfdgot_entry.bfd = entry->abfd;
2278 bfdgotp = htab_find_slot (bfd2got, &bfdgot_entry, INSERT);
2279 bfdgot = (struct mips_elf_bfd2got_hash *)*bfdgotp;
2280
2281 if (bfdgot != NULL)
2282 g = bfdgot->g;
2283 else
2284 {
2285 bfdgot = (struct mips_elf_bfd2got_hash *)bfd_alloc
2286 (arg->obfd, sizeof (struct mips_elf_bfd2got_hash));
2287
2288 if (bfdgot == NULL)
2289 {
2290 arg->obfd = 0;
2291 return 0;
2292 }
2293
2294 *bfdgotp = bfdgot;
2295
2296 bfdgot->bfd = entry->abfd;
2297 bfdgot->g = g = (struct mips_got_info *)
2298 bfd_alloc (arg->obfd, sizeof (struct mips_got_info));
2299 if (g == NULL)
2300 {
2301 arg->obfd = 0;
2302 return 0;
2303 }
2304
2305 g->global_gotsym = NULL;
2306 g->global_gotno = 0;
2307 g->local_gotno = 0;
2308 g->assigned_gotno = -1;
2309 g->got_entries = htab_try_create (1, mips_elf_multi_got_entry_hash,
2310 mips_elf_multi_got_entry_eq, NULL);
2311 if (g->got_entries == NULL)
2312 {
2313 arg->obfd = 0;
2314 return 0;
2315 }
2316
2317 g->bfd2got = NULL;
2318 g->next = NULL;
2319 }
2320
2321 /* Insert the GOT entry in the bfd's got entry hash table. */
2322 entryp = htab_find_slot (g->got_entries, entry, INSERT);
2323 if (*entryp != NULL)
2324 return 1;
2325
2326 *entryp = entry;
2327
2328 if (entry->symndx >= 0 || entry->d.h->forced_local)
2329 ++g->local_gotno;
2330 else
2331 ++g->global_gotno;
2332
2333 return 1;
2334 }
2335
2336 /* Attempt to merge gots of different input bfds. Try to use as much
2337 as possible of the primary got, since it doesn't require explicit
2338 dynamic relocations, but don't use bfds that would reference global
2339 symbols out of the addressable range. Failing the primary got,
2340 attempt to merge with the current got, or finish the current got
2341 and then make make the new got current. */
2342
2343 static int
2344 mips_elf_merge_gots (void **bfd2got_, void *p)
2345 {
2346 struct mips_elf_bfd2got_hash *bfd2got
2347 = (struct mips_elf_bfd2got_hash *)*bfd2got_;
2348 struct mips_elf_got_per_bfd_arg *arg = (struct mips_elf_got_per_bfd_arg *)p;
2349 unsigned int lcount = bfd2got->g->local_gotno;
2350 unsigned int gcount = bfd2got->g->global_gotno;
2351 unsigned int maxcnt = arg->max_count;
2352
2353 /* If we don't have a primary GOT and this is not too big, use it as
2354 a starting point for the primary GOT. */
2355 if (! arg->primary && lcount + gcount <= maxcnt)
2356 {
2357 arg->primary = bfd2got->g;
2358 arg->primary_count = lcount + gcount;
2359 }
2360 /* If it looks like we can merge this bfd's entries with those of
2361 the primary, merge them. The heuristics is conservative, but we
2362 don't have to squeeze it too hard. */
2363 else if (arg->primary
2364 && (arg->primary_count + lcount + gcount) <= maxcnt)
2365 {
2366 struct mips_got_info *g = bfd2got->g;
2367 int old_lcount = arg->primary->local_gotno;
2368 int old_gcount = arg->primary->global_gotno;
2369
2370 bfd2got->g = arg->primary;
2371
2372 htab_traverse (g->got_entries,
2373 mips_elf_make_got_per_bfd,
2374 arg);
2375 if (arg->obfd == NULL)
2376 return 0;
2377
2378 htab_delete (g->got_entries);
2379 /* We don't have to worry about releasing memory of the actual
2380 got entries, since they're all in the master got_entries hash
2381 table anyway. */
2382
2383 BFD_ASSERT (old_lcount + lcount >= arg->primary->local_gotno);
2384 BFD_ASSERT (old_gcount + gcount >= arg->primary->global_gotno);
2385
2386 arg->primary_count = arg->primary->local_gotno
2387 + arg->primary->global_gotno;
2388 }
2389 /* If we can merge with the last-created got, do it. */
2390 else if (arg->current
2391 && arg->current_count + lcount + gcount <= maxcnt)
2392 {
2393 struct mips_got_info *g = bfd2got->g;
2394 int old_lcount = arg->current->local_gotno;
2395 int old_gcount = arg->current->global_gotno;
2396
2397 bfd2got->g = arg->current;
2398
2399 htab_traverse (g->got_entries,
2400 mips_elf_make_got_per_bfd,
2401 arg);
2402 if (arg->obfd == NULL)
2403 return 0;
2404
2405 htab_delete (g->got_entries);
2406
2407 BFD_ASSERT (old_lcount + lcount >= arg->current->local_gotno);
2408 BFD_ASSERT (old_gcount + gcount >= arg->current->global_gotno);
2409
2410 arg->current_count = arg->current->local_gotno
2411 + arg->current->global_gotno;
2412 }
2413 /* Well, we couldn't merge, so create a new GOT. Don't check if it
2414 fits; if it turns out that it doesn't, we'll get relocation
2415 overflows anyway. */
2416 else
2417 {
2418 bfd2got->g->next = arg->current;
2419 arg->current = bfd2got->g;
2420
2421 arg->current_count = lcount + gcount;
2422 }
2423
2424 return 1;
2425 }
2426
2427 /* If passed a NULL mips_got_info in the argument, set the marker used
2428 to tell whether a global symbol needs a got entry (in the primary
2429 got) to the given VALUE.
2430
2431 If passed a pointer G to a mips_got_info in the argument (it must
2432 not be the primary GOT), compute the offset from the beginning of
2433 the (primary) GOT section to the entry in G corresponding to the
2434 global symbol. G's assigned_gotno must contain the index of the
2435 first available global GOT entry in G. VALUE must contain the size
2436 of a GOT entry in bytes. For each global GOT entry that requires a
2437 dynamic relocation, NEEDED_RELOCS is incremented, and the symbol is
2438 marked as not eligible for lazy resolution through a function
2439 stub. */
2440 static int
2441 mips_elf_set_global_got_offset (void **entryp, void *p)
2442 {
2443 struct mips_got_entry *entry = (struct mips_got_entry *)*entryp;
2444 struct mips_elf_set_global_got_offset_arg *arg
2445 = (struct mips_elf_set_global_got_offset_arg *)p;
2446 struct mips_got_info *g = arg->g;
2447
2448 if (entry->abfd != NULL && entry->symndx == -1
2449 && entry->d.h->root.dynindx != -1)
2450 {
2451 if (g)
2452 {
2453 BFD_ASSERT (g->global_gotsym == NULL);
2454
2455 entry->gotidx = arg->value * (long) g->assigned_gotno++;
2456 if (arg->info->shared
2457 || (elf_hash_table (arg->info)->dynamic_sections_created
2458 && ((entry->d.h->root.elf_link_hash_flags
2459 & ELF_LINK_HASH_DEF_DYNAMIC) != 0)
2460 && ((entry->d.h->root.elf_link_hash_flags
2461 & ELF_LINK_HASH_DEF_REGULAR) == 0)))
2462 ++arg->needed_relocs;
2463 }
2464 else
2465 entry->d.h->root.got.offset = arg->value;
2466 }
2467
2468 return 1;
2469 }
2470
2471 /* Mark any global symbols referenced in the GOT we are iterating over
2472 as inelligible for lazy resolution stubs. */
2473 static int
2474 mips_elf_set_no_stub (void **entryp, void *p ATTRIBUTE_UNUSED)
2475 {
2476 struct mips_got_entry *entry = (struct mips_got_entry *)*entryp;
2477
2478 if (entry->abfd != NULL
2479 && entry->symndx == -1
2480 && entry->d.h->root.dynindx != -1)
2481 entry->d.h->no_fn_stub = TRUE;
2482
2483 return 1;
2484 }
2485
2486 /* Follow indirect and warning hash entries so that each got entry
2487 points to the final symbol definition. P must point to a pointer
2488 to the hash table we're traversing. Since this traversal may
2489 modify the hash table, we set this pointer to NULL to indicate
2490 we've made a potentially-destructive change to the hash table, so
2491 the traversal must be restarted. */
2492 static int
2493 mips_elf_resolve_final_got_entry (void **entryp, void *p)
2494 {
2495 struct mips_got_entry *entry = (struct mips_got_entry *)*entryp;
2496 htab_t got_entries = *(htab_t *)p;
2497
2498 if (entry->abfd != NULL && entry->symndx == -1)
2499 {
2500 struct mips_elf_link_hash_entry *h = entry->d.h;
2501
2502 while (h->root.root.type == bfd_link_hash_indirect
2503 || h->root.root.type == bfd_link_hash_warning)
2504 h = (struct mips_elf_link_hash_entry *) h->root.root.u.i.link;
2505
2506 if (entry->d.h == h)
2507 return 1;
2508
2509 entry->d.h = h;
2510
2511 /* If we can't find this entry with the new bfd hash, re-insert
2512 it, and get the traversal restarted. */
2513 if (! htab_find (got_entries, entry))
2514 {
2515 htab_clear_slot (got_entries, entryp);
2516 entryp = htab_find_slot (got_entries, entry, INSERT);
2517 if (! *entryp)
2518 *entryp = entry;
2519 /* Abort the traversal, since the whole table may have
2520 moved, and leave it up to the parent to restart the
2521 process. */
2522 *(htab_t *)p = NULL;
2523 return 0;
2524 }
2525 /* We might want to decrement the global_gotno count, but it's
2526 either too early or too late for that at this point. */
2527 }
2528
2529 return 1;
2530 }
2531
2532 /* Turn indirect got entries in a got_entries table into their final
2533 locations. */
2534 static void
2535 mips_elf_resolve_final_got_entries (struct mips_got_info *g)
2536 {
2537 htab_t got_entries;
2538
2539 do
2540 {
2541 got_entries = g->got_entries;
2542
2543 htab_traverse (got_entries,
2544 mips_elf_resolve_final_got_entry,
2545 &got_entries);
2546 }
2547 while (got_entries == NULL);
2548 }
2549
2550 /* Return the offset of an input bfd IBFD's GOT from the beginning of
2551 the primary GOT. */
2552 static bfd_vma
2553 mips_elf_adjust_gp (bfd *abfd, struct mips_got_info *g, bfd *ibfd)
2554 {
2555 if (g->bfd2got == NULL)
2556 return 0;
2557
2558 g = mips_elf_got_for_ibfd (g, ibfd);
2559 if (! g)
2560 return 0;
2561
2562 BFD_ASSERT (g->next);
2563
2564 g = g->next;
2565
2566 return (g->local_gotno + g->global_gotno) * MIPS_ELF_GOT_SIZE (abfd);
2567 }
2568
2569 /* Turn a single GOT that is too big for 16-bit addressing into
2570 a sequence of GOTs, each one 16-bit addressable. */
2571
2572 static bfd_boolean
2573 mips_elf_multi_got (bfd *abfd, struct bfd_link_info *info,
2574 struct mips_got_info *g, asection *got,
2575 bfd_size_type pages)
2576 {
2577 struct mips_elf_got_per_bfd_arg got_per_bfd_arg;
2578 struct mips_elf_set_global_got_offset_arg set_got_offset_arg;
2579 struct mips_got_info *gg;
2580 unsigned int assign;
2581
2582 g->bfd2got = htab_try_create (1, mips_elf_bfd2got_entry_hash,
2583 mips_elf_bfd2got_entry_eq, NULL);
2584 if (g->bfd2got == NULL)
2585 return FALSE;
2586
2587 got_per_bfd_arg.bfd2got = g->bfd2got;
2588 got_per_bfd_arg.obfd = abfd;
2589 got_per_bfd_arg.info = info;
2590
2591 /* Count how many GOT entries each input bfd requires, creating a
2592 map from bfd to got info while at that. */
2593 mips_elf_resolve_final_got_entries (g);
2594 htab_traverse (g->got_entries, mips_elf_make_got_per_bfd, &got_per_bfd_arg);
2595 if (got_per_bfd_arg.obfd == NULL)
2596 return FALSE;
2597
2598 got_per_bfd_arg.current = NULL;
2599 got_per_bfd_arg.primary = NULL;
2600 /* Taking out PAGES entries is a worst-case estimate. We could
2601 compute the maximum number of pages that each separate input bfd
2602 uses, but it's probably not worth it. */
2603 got_per_bfd_arg.max_count = ((MIPS_ELF_GOT_MAX_SIZE (abfd)
2604 / MIPS_ELF_GOT_SIZE (abfd))
2605 - MIPS_RESERVED_GOTNO - pages);
2606
2607 /* Try to merge the GOTs of input bfds together, as long as they
2608 don't seem to exceed the maximum GOT size, choosing one of them
2609 to be the primary GOT. */
2610 htab_traverse (g->bfd2got, mips_elf_merge_gots, &got_per_bfd_arg);
2611 if (got_per_bfd_arg.obfd == NULL)
2612 return FALSE;
2613
2614 /* If we find any suitable primary GOT, create an empty one. */
2615 if (got_per_bfd_arg.primary == NULL)
2616 {
2617 g->next = (struct mips_got_info *)
2618 bfd_alloc (abfd, sizeof (struct mips_got_info));
2619 if (g->next == NULL)
2620 return FALSE;
2621
2622 g->next->global_gotsym = NULL;
2623 g->next->global_gotno = 0;
2624 g->next->local_gotno = 0;
2625 g->next->assigned_gotno = 0;
2626 g->next->got_entries = htab_try_create (1, mips_elf_multi_got_entry_hash,
2627 mips_elf_multi_got_entry_eq,
2628 NULL);
2629 if (g->next->got_entries == NULL)
2630 return FALSE;
2631 g->next->bfd2got = NULL;
2632 }
2633 else
2634 g->next = got_per_bfd_arg.primary;
2635 g->next->next = got_per_bfd_arg.current;
2636
2637 /* GG is now the master GOT, and G is the primary GOT. */
2638 gg = g;
2639 g = g->next;
2640
2641 /* Map the output bfd to the primary got. That's what we're going
2642 to use for bfds that use GOT16 or GOT_PAGE relocations that we
2643 didn't mark in check_relocs, and we want a quick way to find it.
2644 We can't just use gg->next because we're going to reverse the
2645 list. */
2646 {
2647 struct mips_elf_bfd2got_hash *bfdgot;
2648 void **bfdgotp;
2649
2650 bfdgot = (struct mips_elf_bfd2got_hash *)bfd_alloc
2651 (abfd, sizeof (struct mips_elf_bfd2got_hash));
2652
2653 if (bfdgot == NULL)
2654 return FALSE;
2655
2656 bfdgot->bfd = abfd;
2657 bfdgot->g = g;
2658 bfdgotp = htab_find_slot (gg->bfd2got, bfdgot, INSERT);
2659
2660 BFD_ASSERT (*bfdgotp == NULL);
2661 *bfdgotp = bfdgot;
2662 }
2663
2664 /* The IRIX dynamic linker requires every symbol that is referenced
2665 in a dynamic relocation to be present in the primary GOT, so
2666 arrange for them to appear after those that are actually
2667 referenced.
2668
2669 GNU/Linux could very well do without it, but it would slow down
2670 the dynamic linker, since it would have to resolve every dynamic
2671 symbol referenced in other GOTs more than once, without help from
2672 the cache. Also, knowing that every external symbol has a GOT
2673 helps speed up the resolution of local symbols too, so GNU/Linux
2674 follows IRIX's practice.
2675
2676 The number 2 is used by mips_elf_sort_hash_table_f to count
2677 global GOT symbols that are unreferenced in the primary GOT, with
2678 an initial dynamic index computed from gg->assigned_gotno, where
2679 the number of unreferenced global entries in the primary GOT is
2680 preserved. */
2681 if (1)
2682 {
2683 gg->assigned_gotno = gg->global_gotno - g->global_gotno;
2684 g->global_gotno = gg->global_gotno;
2685 set_got_offset_arg.value = 2;
2686 }
2687 else
2688 {
2689 /* This could be used for dynamic linkers that don't optimize
2690 symbol resolution while applying relocations so as to use
2691 primary GOT entries or assuming the symbol is locally-defined.
2692 With this code, we assign lower dynamic indices to global
2693 symbols that are not referenced in the primary GOT, so that
2694 their entries can be omitted. */
2695 gg->assigned_gotno = 0;
2696 set_got_offset_arg.value = -1;
2697 }
2698
2699 /* Reorder dynamic symbols as described above (which behavior
2700 depends on the setting of VALUE). */
2701 set_got_offset_arg.g = NULL;
2702 htab_traverse (gg->got_entries, mips_elf_set_global_got_offset,
2703 &set_got_offset_arg);
2704 set_got_offset_arg.value = 1;
2705 htab_traverse (g->got_entries, mips_elf_set_global_got_offset,
2706 &set_got_offset_arg);
2707 if (! mips_elf_sort_hash_table (info, 1))
2708 return FALSE;
2709
2710 /* Now go through the GOTs assigning them offset ranges.
2711 [assigned_gotno, local_gotno[ will be set to the range of local
2712 entries in each GOT. We can then compute the end of a GOT by
2713 adding local_gotno to global_gotno. We reverse the list and make
2714 it circular since then we'll be able to quickly compute the
2715 beginning of a GOT, by computing the end of its predecessor. To
2716 avoid special cases for the primary GOT, while still preserving
2717 assertions that are valid for both single- and multi-got links,
2718 we arrange for the main got struct to have the right number of
2719 global entries, but set its local_gotno such that the initial
2720 offset of the primary GOT is zero. Remember that the primary GOT
2721 will become the last item in the circular linked list, so it
2722 points back to the master GOT. */
2723 gg->local_gotno = -g->global_gotno;
2724 gg->global_gotno = g->global_gotno;
2725 assign = 0;
2726 gg->next = gg;
2727
2728 do
2729 {
2730 struct mips_got_info *gn;
2731
2732 assign += MIPS_RESERVED_GOTNO;
2733 g->assigned_gotno = assign;
2734 g->local_gotno += assign + pages;
2735 assign = g->local_gotno + g->global_gotno;
2736
2737 /* Take g out of the direct list, and push it onto the reversed
2738 list that gg points to. */
2739 gn = g->next;
2740 g->next = gg->next;
2741 gg->next = g;
2742 g = gn;
2743
2744 /* Mark global symbols in every non-primary GOT as ineligible for
2745 stubs. */
2746 if (g)
2747 htab_traverse (g->got_entries, mips_elf_set_no_stub, NULL);
2748 }
2749 while (g);
2750
2751 got->_raw_size = (gg->next->local_gotno
2752 + gg->next->global_gotno) * MIPS_ELF_GOT_SIZE (abfd);
2753
2754 return TRUE;
2755 }
2756
2757 \f
2758 /* Returns the first relocation of type r_type found, beginning with
2759 RELOCATION. RELEND is one-past-the-end of the relocation table. */
2760
2761 static const Elf_Internal_Rela *
2762 mips_elf_next_relocation (bfd *abfd ATTRIBUTE_UNUSED, unsigned int r_type,
2763 const Elf_Internal_Rela *relocation,
2764 const Elf_Internal_Rela *relend)
2765 {
2766 /* According to the MIPS ELF ABI, the R_MIPS_LO16 relocation must be
2767 immediately following. However, for the IRIX6 ABI, the next
2768 relocation may be a composed relocation consisting of several
2769 relocations for the same address. In that case, the R_MIPS_LO16
2770 relocation may occur as one of these. We permit a similar
2771 extension in general, as that is useful for GCC. */
2772 while (relocation < relend)
2773 {
2774 if (ELF_R_TYPE (abfd, relocation->r_info) == r_type)
2775 return relocation;
2776
2777 ++relocation;
2778 }
2779
2780 /* We didn't find it. */
2781 bfd_set_error (bfd_error_bad_value);
2782 return NULL;
2783 }
2784
2785 /* Return whether a relocation is against a local symbol. */
2786
2787 static bfd_boolean
2788 mips_elf_local_relocation_p (bfd *input_bfd,
2789 const Elf_Internal_Rela *relocation,
2790 asection **local_sections,
2791 bfd_boolean check_forced)
2792 {
2793 unsigned long r_symndx;
2794 Elf_Internal_Shdr *symtab_hdr;
2795 struct mips_elf_link_hash_entry *h;
2796 size_t extsymoff;
2797
2798 r_symndx = ELF_R_SYM (input_bfd, relocation->r_info);
2799 symtab_hdr = &elf_tdata (input_bfd)->symtab_hdr;
2800 extsymoff = (elf_bad_symtab (input_bfd)) ? 0 : symtab_hdr->sh_info;
2801
2802 if (r_symndx < extsymoff)
2803 return TRUE;
2804 if (elf_bad_symtab (input_bfd) && local_sections[r_symndx] != NULL)
2805 return TRUE;
2806
2807 if (check_forced)
2808 {
2809 /* Look up the hash table to check whether the symbol
2810 was forced local. */
2811 h = (struct mips_elf_link_hash_entry *)
2812 elf_sym_hashes (input_bfd) [r_symndx - extsymoff];
2813 /* Find the real hash-table entry for this symbol. */
2814 while (h->root.root.type == bfd_link_hash_indirect
2815 || h->root.root.type == bfd_link_hash_warning)
2816 h = (struct mips_elf_link_hash_entry *) h->root.root.u.i.link;
2817 if ((h->root.elf_link_hash_flags & ELF_LINK_FORCED_LOCAL) != 0)
2818 return TRUE;
2819 }
2820
2821 return FALSE;
2822 }
2823 \f
2824 /* Sign-extend VALUE, which has the indicated number of BITS. */
2825
2826 bfd_vma
2827 _bfd_mips_elf_sign_extend (bfd_vma value, int bits)
2828 {
2829 if (value & ((bfd_vma) 1 << (bits - 1)))
2830 /* VALUE is negative. */
2831 value |= ((bfd_vma) - 1) << bits;
2832
2833 return value;
2834 }
2835
2836 /* Return non-zero if the indicated VALUE has overflowed the maximum
2837 range expressible by a signed number with the indicated number of
2838 BITS. */
2839
2840 static bfd_boolean
2841 mips_elf_overflow_p (bfd_vma value, int bits)
2842 {
2843 bfd_signed_vma svalue = (bfd_signed_vma) value;
2844
2845 if (svalue > (1 << (bits - 1)) - 1)
2846 /* The value is too big. */
2847 return TRUE;
2848 else if (svalue < -(1 << (bits - 1)))
2849 /* The value is too small. */
2850 return TRUE;
2851
2852 /* All is well. */
2853 return FALSE;
2854 }
2855
2856 /* Calculate the %high function. */
2857
2858 static bfd_vma
2859 mips_elf_high (bfd_vma value)
2860 {
2861 return ((value + (bfd_vma) 0x8000) >> 16) & 0xffff;
2862 }
2863
2864 /* Calculate the %higher function. */
2865
2866 static bfd_vma
2867 mips_elf_higher (bfd_vma value ATTRIBUTE_UNUSED)
2868 {
2869 #ifdef BFD64
2870 return ((value + (bfd_vma) 0x80008000) >> 32) & 0xffff;
2871 #else
2872 abort ();
2873 return (bfd_vma) -1;
2874 #endif
2875 }
2876
2877 /* Calculate the %highest function. */
2878
2879 static bfd_vma
2880 mips_elf_highest (bfd_vma value ATTRIBUTE_UNUSED)
2881 {
2882 #ifdef BFD64
2883 return ((value + (((bfd_vma) 0x8000 << 32) | 0x80008000)) >> 48) & 0xffff;
2884 #else
2885 abort ();
2886 return (bfd_vma) -1;
2887 #endif
2888 }
2889 \f
2890 /* Create the .compact_rel section. */
2891
2892 static bfd_boolean
2893 mips_elf_create_compact_rel_section
2894 (bfd *abfd, struct bfd_link_info *info ATTRIBUTE_UNUSED)
2895 {
2896 flagword flags;
2897 register asection *s;
2898
2899 if (bfd_get_section_by_name (abfd, ".compact_rel") == NULL)
2900 {
2901 flags = (SEC_HAS_CONTENTS | SEC_IN_MEMORY | SEC_LINKER_CREATED
2902 | SEC_READONLY);
2903
2904 s = bfd_make_section (abfd, ".compact_rel");
2905 if (s == NULL
2906 || ! bfd_set_section_flags (abfd, s, flags)
2907 || ! bfd_set_section_alignment (abfd, s,
2908 MIPS_ELF_LOG_FILE_ALIGN (abfd)))
2909 return FALSE;
2910
2911 s->_raw_size = sizeof (Elf32_External_compact_rel);
2912 }
2913
2914 return TRUE;
2915 }
2916
2917 /* Create the .got section to hold the global offset table. */
2918
2919 static bfd_boolean
2920 mips_elf_create_got_section (bfd *abfd, struct bfd_link_info *info,
2921 bfd_boolean maybe_exclude)
2922 {
2923 flagword flags;
2924 register asection *s;
2925 struct elf_link_hash_entry *h;
2926 struct bfd_link_hash_entry *bh;
2927 struct mips_got_info *g;
2928 bfd_size_type amt;
2929
2930 /* This function may be called more than once. */
2931 s = mips_elf_got_section (abfd, TRUE);
2932 if (s)
2933 {
2934 if (! maybe_exclude)
2935 s->flags &= ~SEC_EXCLUDE;
2936 return TRUE;
2937 }
2938
2939 flags = (SEC_ALLOC | SEC_LOAD | SEC_HAS_CONTENTS | SEC_IN_MEMORY
2940 | SEC_LINKER_CREATED);
2941
2942 if (maybe_exclude)
2943 flags |= SEC_EXCLUDE;
2944
2945 /* We have to use an alignment of 2**4 here because this is hardcoded
2946 in the function stub generation and in the linker script. */
2947 s = bfd_make_section (abfd, ".got");
2948 if (s == NULL
2949 || ! bfd_set_section_flags (abfd, s, flags)
2950 || ! bfd_set_section_alignment (abfd, s, 4))
2951 return FALSE;
2952
2953 /* Define the symbol _GLOBAL_OFFSET_TABLE_. We don't do this in the
2954 linker script because we don't want to define the symbol if we
2955 are not creating a global offset table. */
2956 bh = NULL;
2957 if (! (_bfd_generic_link_add_one_symbol
2958 (info, abfd, "_GLOBAL_OFFSET_TABLE_", BSF_GLOBAL, s,
2959 0, NULL, FALSE, get_elf_backend_data (abfd)->collect, &bh)))
2960 return FALSE;
2961
2962 h = (struct elf_link_hash_entry *) bh;
2963 h->elf_link_hash_flags &= ~ELF_LINK_NON_ELF;
2964 h->elf_link_hash_flags |= ELF_LINK_HASH_DEF_REGULAR;
2965 h->type = STT_OBJECT;
2966
2967 if (info->shared
2968 && ! bfd_elf32_link_record_dynamic_symbol (info, h))
2969 return FALSE;
2970
2971 amt = sizeof (struct mips_got_info);
2972 g = bfd_alloc (abfd, amt);
2973 if (g == NULL)
2974 return FALSE;
2975 g->global_gotsym = NULL;
2976 g->global_gotno = 0;
2977 g->local_gotno = MIPS_RESERVED_GOTNO;
2978 g->assigned_gotno = MIPS_RESERVED_GOTNO;
2979 g->bfd2got = NULL;
2980 g->next = NULL;
2981 g->got_entries = htab_try_create (1, mips_elf_got_entry_hash,
2982 mips_elf_got_entry_eq, NULL);
2983 if (g->got_entries == NULL)
2984 return FALSE;
2985 mips_elf_section_data (s)->u.got_info = g;
2986 mips_elf_section_data (s)->elf.this_hdr.sh_flags
2987 |= SHF_ALLOC | SHF_WRITE | SHF_MIPS_GPREL;
2988
2989 return TRUE;
2990 }
2991 \f
2992 /* Calculate the value produced by the RELOCATION (which comes from
2993 the INPUT_BFD). The ADDEND is the addend to use for this
2994 RELOCATION; RELOCATION->R_ADDEND is ignored.
2995
2996 The result of the relocation calculation is stored in VALUEP.
2997 REQUIRE_JALXP indicates whether or not the opcode used with this
2998 relocation must be JALX.
2999
3000 This function returns bfd_reloc_continue if the caller need take no
3001 further action regarding this relocation, bfd_reloc_notsupported if
3002 something goes dramatically wrong, bfd_reloc_overflow if an
3003 overflow occurs, and bfd_reloc_ok to indicate success. */
3004
3005 static bfd_reloc_status_type
3006 mips_elf_calculate_relocation (bfd *abfd, bfd *input_bfd,
3007 asection *input_section,
3008 struct bfd_link_info *info,
3009 const Elf_Internal_Rela *relocation,
3010 bfd_vma addend, reloc_howto_type *howto,
3011 Elf_Internal_Sym *local_syms,
3012 asection **local_sections, bfd_vma *valuep,
3013 const char **namep, bfd_boolean *require_jalxp,
3014 bfd_boolean save_addend)
3015 {
3016 /* The eventual value we will return. */
3017 bfd_vma value;
3018 /* The address of the symbol against which the relocation is
3019 occurring. */
3020 bfd_vma symbol = 0;
3021 /* The final GP value to be used for the relocatable, executable, or
3022 shared object file being produced. */
3023 bfd_vma gp = MINUS_ONE;
3024 /* The place (section offset or address) of the storage unit being
3025 relocated. */
3026 bfd_vma p;
3027 /* The value of GP used to create the relocatable object. */
3028 bfd_vma gp0 = MINUS_ONE;
3029 /* The offset into the global offset table at which the address of
3030 the relocation entry symbol, adjusted by the addend, resides
3031 during execution. */
3032 bfd_vma g = MINUS_ONE;
3033 /* The section in which the symbol referenced by the relocation is
3034 located. */
3035 asection *sec = NULL;
3036 struct mips_elf_link_hash_entry *h = NULL;
3037 /* TRUE if the symbol referred to by this relocation is a local
3038 symbol. */
3039 bfd_boolean local_p, was_local_p;
3040 /* TRUE if the symbol referred to by this relocation is "_gp_disp". */
3041 bfd_boolean gp_disp_p = FALSE;
3042 Elf_Internal_Shdr *symtab_hdr;
3043 size_t extsymoff;
3044 unsigned long r_symndx;
3045 int r_type;
3046 /* TRUE if overflow occurred during the calculation of the
3047 relocation value. */
3048 bfd_boolean overflowed_p;
3049 /* TRUE if this relocation refers to a MIPS16 function. */
3050 bfd_boolean target_is_16_bit_code_p = FALSE;
3051
3052 /* Parse the relocation. */
3053 r_symndx = ELF_R_SYM (input_bfd, relocation->r_info);
3054 r_type = ELF_R_TYPE (input_bfd, relocation->r_info);
3055 p = (input_section->output_section->vma
3056 + input_section->output_offset
3057 + relocation->r_offset);
3058
3059 /* Assume that there will be no overflow. */
3060 overflowed_p = FALSE;
3061
3062 /* Figure out whether or not the symbol is local, and get the offset
3063 used in the array of hash table entries. */
3064 symtab_hdr = &elf_tdata (input_bfd)->symtab_hdr;
3065 local_p = mips_elf_local_relocation_p (input_bfd, relocation,
3066 local_sections, FALSE);
3067 was_local_p = local_p;
3068 if (! elf_bad_symtab (input_bfd))
3069 extsymoff = symtab_hdr->sh_info;
3070 else
3071 {
3072 /* The symbol table does not follow the rule that local symbols
3073 must come before globals. */
3074 extsymoff = 0;
3075 }
3076
3077 /* Figure out the value of the symbol. */
3078 if (local_p)
3079 {
3080 Elf_Internal_Sym *sym;
3081
3082 sym = local_syms + r_symndx;
3083 sec = local_sections[r_symndx];
3084
3085 symbol = sec->output_section->vma + sec->output_offset;
3086 if (ELF_ST_TYPE (sym->st_info) != STT_SECTION
3087 || (sec->flags & SEC_MERGE))
3088 symbol += sym->st_value;
3089 if ((sec->flags & SEC_MERGE)
3090 && ELF_ST_TYPE (sym->st_info) == STT_SECTION)
3091 {
3092 addend = _bfd_elf_rel_local_sym (abfd, sym, &sec, addend);
3093 addend -= symbol;
3094 addend += sec->output_section->vma + sec->output_offset;
3095 }
3096
3097 /* MIPS16 text labels should be treated as odd. */
3098 if (sym->st_other == STO_MIPS16)
3099 ++symbol;
3100
3101 /* Record the name of this symbol, for our caller. */
3102 *namep = bfd_elf_string_from_elf_section (input_bfd,
3103 symtab_hdr->sh_link,
3104 sym->st_name);
3105 if (*namep == '\0')
3106 *namep = bfd_section_name (input_bfd, sec);
3107
3108 target_is_16_bit_code_p = (sym->st_other == STO_MIPS16);
3109 }
3110 else
3111 {
3112 /* ??? Could we use RELOC_FOR_GLOBAL_SYMBOL here ? */
3113
3114 /* For global symbols we look up the symbol in the hash-table. */
3115 h = ((struct mips_elf_link_hash_entry *)
3116 elf_sym_hashes (input_bfd) [r_symndx - extsymoff]);
3117 /* Find the real hash-table entry for this symbol. */
3118 while (h->root.root.type == bfd_link_hash_indirect
3119 || h->root.root.type == bfd_link_hash_warning)
3120 h = (struct mips_elf_link_hash_entry *) h->root.root.u.i.link;
3121
3122 /* Record the name of this symbol, for our caller. */
3123 *namep = h->root.root.root.string;
3124
3125 /* See if this is the special _gp_disp symbol. Note that such a
3126 symbol must always be a global symbol. */
3127 if (strcmp (*namep, "_gp_disp") == 0
3128 && ! NEWABI_P (input_bfd))
3129 {
3130 /* Relocations against _gp_disp are permitted only with
3131 R_MIPS_HI16 and R_MIPS_LO16 relocations. */
3132 if (r_type != R_MIPS_HI16 && r_type != R_MIPS_LO16)
3133 return bfd_reloc_notsupported;
3134
3135 gp_disp_p = TRUE;
3136 }
3137 /* If this symbol is defined, calculate its address. Note that
3138 _gp_disp is a magic symbol, always implicitly defined by the
3139 linker, so it's inappropriate to check to see whether or not
3140 its defined. */
3141 else if ((h->root.root.type == bfd_link_hash_defined
3142 || h->root.root.type == bfd_link_hash_defweak)
3143 && h->root.root.u.def.section)
3144 {
3145 sec = h->root.root.u.def.section;
3146 if (sec->output_section)
3147 symbol = (h->root.root.u.def.value
3148 + sec->output_section->vma
3149 + sec->output_offset);
3150 else
3151 symbol = h->root.root.u.def.value;
3152 }
3153 else if (h->root.root.type == bfd_link_hash_undefweak)
3154 /* We allow relocations against undefined weak symbols, giving
3155 it the value zero, so that you can undefined weak functions
3156 and check to see if they exist by looking at their
3157 addresses. */
3158 symbol = 0;
3159 else if (info->shared
3160 && info->unresolved_syms_in_objects == RM_IGNORE
3161 && ELF_ST_VISIBILITY (h->root.other) == STV_DEFAULT)
3162 symbol = 0;
3163 else if (strcmp (*namep, "_DYNAMIC_LINK") == 0 ||
3164 strcmp (*namep, "_DYNAMIC_LINKING") == 0)
3165 {
3166 /* If this is a dynamic link, we should have created a
3167 _DYNAMIC_LINK symbol or _DYNAMIC_LINKING(for normal mips) symbol
3168 in in _bfd_mips_elf_create_dynamic_sections.
3169 Otherwise, we should define the symbol with a value of 0.
3170 FIXME: It should probably get into the symbol table
3171 somehow as well. */
3172 BFD_ASSERT (! info->shared);
3173 BFD_ASSERT (bfd_get_section_by_name (abfd, ".dynamic") == NULL);
3174 symbol = 0;
3175 }
3176 else
3177 {
3178 if (! ((*info->callbacks->undefined_symbol)
3179 (info, h->root.root.root.string, input_bfd,
3180 input_section, relocation->r_offset,
3181 ((info->shared && info->unresolved_syms_in_shared_libs == RM_GENERATE_ERROR)
3182 || (!info->shared && info->unresolved_syms_in_objects == RM_GENERATE_ERROR)
3183 || ELF_ST_VISIBILITY (h->root.other)))))
3184 return bfd_reloc_undefined;
3185 symbol = 0;
3186 }
3187
3188 target_is_16_bit_code_p = (h->root.other == STO_MIPS16);
3189 }
3190
3191 /* If this is a 32- or 64-bit call to a 16-bit function with a stub, we
3192 need to redirect the call to the stub, unless we're already *in*
3193 a stub. */
3194 if (r_type != R_MIPS16_26 && !info->relocatable
3195 && ((h != NULL && h->fn_stub != NULL)
3196 || (local_p && elf_tdata (input_bfd)->local_stubs != NULL
3197 && elf_tdata (input_bfd)->local_stubs[r_symndx] != NULL))
3198 && !mips_elf_stub_section_p (input_bfd, input_section))
3199 {
3200 /* This is a 32- or 64-bit call to a 16-bit function. We should
3201 have already noticed that we were going to need the
3202 stub. */
3203 if (local_p)
3204 sec = elf_tdata (input_bfd)->local_stubs[r_symndx];
3205 else
3206 {
3207 BFD_ASSERT (h->need_fn_stub);
3208 sec = h->fn_stub;
3209 }
3210
3211 symbol = sec->output_section->vma + sec->output_offset;
3212 }
3213 /* If this is a 16-bit call to a 32- or 64-bit function with a stub, we
3214 need to redirect the call to the stub. */
3215 else if (r_type == R_MIPS16_26 && !info->relocatable
3216 && h != NULL
3217 && (h->call_stub != NULL || h->call_fp_stub != NULL)
3218 && !target_is_16_bit_code_p)
3219 {
3220 /* If both call_stub and call_fp_stub are defined, we can figure
3221 out which one to use by seeing which one appears in the input
3222 file. */
3223 if (h->call_stub != NULL && h->call_fp_stub != NULL)
3224 {
3225 asection *o;
3226
3227 sec = NULL;
3228 for (o = input_bfd->sections; o != NULL; o = o->next)
3229 {
3230 if (strncmp (bfd_get_section_name (input_bfd, o),
3231 CALL_FP_STUB, sizeof CALL_FP_STUB - 1) == 0)
3232 {
3233 sec = h->call_fp_stub;
3234 break;
3235 }
3236 }
3237 if (sec == NULL)
3238 sec = h->call_stub;
3239 }
3240 else if (h->call_stub != NULL)
3241 sec = h->call_stub;
3242 else
3243 sec = h->call_fp_stub;
3244
3245 BFD_ASSERT (sec->_raw_size > 0);
3246 symbol = sec->output_section->vma + sec->output_offset;
3247 }
3248
3249 /* Calls from 16-bit code to 32-bit code and vice versa require the
3250 special jalx instruction. */
3251 *require_jalxp = (!info->relocatable
3252 && (((r_type == R_MIPS16_26) && !target_is_16_bit_code_p)
3253 || ((r_type == R_MIPS_26) && target_is_16_bit_code_p)));
3254
3255 local_p = mips_elf_local_relocation_p (input_bfd, relocation,
3256 local_sections, TRUE);
3257
3258 /* If we haven't already determined the GOT offset, or the GP value,
3259 and we're going to need it, get it now. */
3260 switch (r_type)
3261 {
3262 case R_MIPS_GOT_PAGE:
3263 case R_MIPS_GOT_OFST:
3264 /* If this symbol got a global GOT entry, we have to decay
3265 GOT_PAGE/GOT_OFST to GOT_DISP/addend. */
3266 local_p = local_p || ! h
3267 || (h->root.dynindx
3268 < mips_elf_get_global_gotsym_index (elf_hash_table (info)
3269 ->dynobj));
3270 if (local_p || r_type == R_MIPS_GOT_OFST)
3271 break;
3272 /* Fall through. */
3273
3274 case R_MIPS_CALL16:
3275 case R_MIPS_GOT16:
3276 case R_MIPS_GOT_DISP:
3277 case R_MIPS_GOT_HI16:
3278 case R_MIPS_CALL_HI16:
3279 case R_MIPS_GOT_LO16:
3280 case R_MIPS_CALL_LO16:
3281 /* Find the index into the GOT where this value is located. */
3282 if (!local_p)
3283 {
3284 /* GOT_PAGE may take a non-zero addend, that is ignored in a
3285 GOT_PAGE relocation that decays to GOT_DISP because the
3286 symbol turns out to be global. The addend is then added
3287 as GOT_OFST. */
3288 BFD_ASSERT (addend == 0 || r_type == R_MIPS_GOT_PAGE);
3289 g = mips_elf_global_got_index (elf_hash_table (info)->dynobj,
3290 input_bfd,
3291 (struct elf_link_hash_entry *) h);
3292 if (! elf_hash_table(info)->dynamic_sections_created
3293 || (info->shared
3294 && (info->symbolic || h->root.dynindx == -1)
3295 && (h->root.elf_link_hash_flags & ELF_LINK_HASH_DEF_REGULAR)))
3296 {
3297 /* This is a static link or a -Bsymbolic link. The
3298 symbol is defined locally, or was forced to be local.
3299 We must initialize this entry in the GOT. */
3300 bfd *tmpbfd = elf_hash_table (info)->dynobj;
3301 asection *sgot = mips_elf_got_section (tmpbfd, FALSE);
3302 MIPS_ELF_PUT_WORD (tmpbfd, symbol, sgot->contents + g);
3303 }
3304 }
3305 else if (r_type == R_MIPS_GOT16 || r_type == R_MIPS_CALL16)
3306 /* There's no need to create a local GOT entry here; the
3307 calculation for a local GOT16 entry does not involve G. */
3308 break;
3309 else
3310 {
3311 g = mips_elf_local_got_index (abfd, input_bfd,
3312 info, symbol + addend);
3313 if (g == MINUS_ONE)
3314 return bfd_reloc_outofrange;
3315 }
3316
3317 /* Convert GOT indices to actual offsets. */
3318 g = mips_elf_got_offset_from_index (elf_hash_table (info)->dynobj,
3319 abfd, input_bfd, g);
3320 break;
3321
3322 case R_MIPS_HI16:
3323 case R_MIPS_LO16:
3324 case R_MIPS16_GPREL:
3325 case R_MIPS_GPREL16:
3326 case R_MIPS_GPREL32:
3327 case R_MIPS_LITERAL:
3328 gp0 = _bfd_get_gp_value (input_bfd);
3329 gp = _bfd_get_gp_value (abfd);
3330 if (elf_hash_table (info)->dynobj)
3331 gp += mips_elf_adjust_gp (abfd,
3332 mips_elf_got_info
3333 (elf_hash_table (info)->dynobj, NULL),
3334 input_bfd);
3335 break;
3336
3337 default:
3338 break;
3339 }
3340
3341 /* Figure out what kind of relocation is being performed. */
3342 switch (r_type)
3343 {
3344 case R_MIPS_NONE:
3345 return bfd_reloc_continue;
3346
3347 case R_MIPS_16:
3348 value = symbol + _bfd_mips_elf_sign_extend (addend, 16);
3349 overflowed_p = mips_elf_overflow_p (value, 16);
3350 break;
3351
3352 case R_MIPS_32:
3353 case R_MIPS_REL32:
3354 case R_MIPS_64:
3355 if ((info->shared
3356 || (elf_hash_table (info)->dynamic_sections_created
3357 && h != NULL
3358 && ((h->root.elf_link_hash_flags
3359 & ELF_LINK_HASH_DEF_DYNAMIC) != 0)
3360 && ((h->root.elf_link_hash_flags
3361 & ELF_LINK_HASH_DEF_REGULAR) == 0)))
3362 && r_symndx != 0
3363 && (input_section->flags & SEC_ALLOC) != 0)
3364 {
3365 /* If we're creating a shared library, or this relocation is
3366 against a symbol in a shared library, then we can't know
3367 where the symbol will end up. So, we create a relocation
3368 record in the output, and leave the job up to the dynamic
3369 linker. */
3370 value = addend;
3371 if (!mips_elf_create_dynamic_relocation (abfd,
3372 info,
3373 relocation,
3374 h,
3375 sec,
3376 symbol,
3377 &value,
3378 input_section))
3379 return bfd_reloc_undefined;
3380 }
3381 else
3382 {
3383 if (r_type != R_MIPS_REL32)
3384 value = symbol + addend;
3385 else
3386 value = addend;
3387 }
3388 value &= howto->dst_mask;
3389 break;
3390
3391 case R_MIPS_PC32:
3392 case R_MIPS_PC64:
3393 case R_MIPS_GNU_REL_LO16:
3394 value = symbol + addend - p;
3395 value &= howto->dst_mask;
3396 break;
3397
3398 case R_MIPS_GNU_REL16_S2:
3399 value = symbol + _bfd_mips_elf_sign_extend (addend, 18) - p;
3400 overflowed_p = mips_elf_overflow_p (value, 18);
3401 value = (value >> 2) & howto->dst_mask;
3402 break;
3403
3404 case R_MIPS_GNU_REL_HI16:
3405 /* Instead of subtracting 'p' here, we should be subtracting the
3406 equivalent value for the LO part of the reloc, since the value
3407 here is relative to that address. Because that's not easy to do,
3408 we adjust 'addend' in _bfd_mips_elf_relocate_section(). See also
3409 the comment there for more information. */
3410 value = mips_elf_high (addend + symbol - p);
3411 value &= howto->dst_mask;
3412 break;
3413
3414 case R_MIPS16_26:
3415 /* The calculation for R_MIPS16_26 is just the same as for an
3416 R_MIPS_26. It's only the storage of the relocated field into
3417 the output file that's different. That's handled in
3418 mips_elf_perform_relocation. So, we just fall through to the
3419 R_MIPS_26 case here. */
3420 case R_MIPS_26:
3421 if (local_p)
3422 value = ((addend | ((p + 4) & 0xf0000000)) + symbol) >> 2;
3423 else
3424 value = (_bfd_mips_elf_sign_extend (addend, 28) + symbol) >> 2;
3425 value &= howto->dst_mask;
3426 break;
3427
3428 case R_MIPS_HI16:
3429 if (!gp_disp_p)
3430 {
3431 value = mips_elf_high (addend + symbol);
3432 value &= howto->dst_mask;
3433 }
3434 else
3435 {
3436 value = mips_elf_high (addend + gp - p);
3437 overflowed_p = mips_elf_overflow_p (value, 16);
3438 }
3439 break;
3440
3441 case R_MIPS_LO16:
3442 if (!gp_disp_p)
3443 value = (symbol + addend) & howto->dst_mask;
3444 else
3445 {
3446 value = addend + gp - p + 4;
3447 /* The MIPS ABI requires checking the R_MIPS_LO16 relocation
3448 for overflow. But, on, say, IRIX5, relocations against
3449 _gp_disp are normally generated from the .cpload
3450 pseudo-op. It generates code that normally looks like
3451 this:
3452
3453 lui $gp,%hi(_gp_disp)
3454 addiu $gp,$gp,%lo(_gp_disp)
3455 addu $gp,$gp,$t9
3456
3457 Here $t9 holds the address of the function being called,
3458 as required by the MIPS ELF ABI. The R_MIPS_LO16
3459 relocation can easily overflow in this situation, but the
3460 R_MIPS_HI16 relocation will handle the overflow.
3461 Therefore, we consider this a bug in the MIPS ABI, and do
3462 not check for overflow here. */
3463 }
3464 break;
3465
3466 case R_MIPS_LITERAL:
3467 /* Because we don't merge literal sections, we can handle this
3468 just like R_MIPS_GPREL16. In the long run, we should merge
3469 shared literals, and then we will need to additional work
3470 here. */
3471
3472 /* Fall through. */
3473
3474 case R_MIPS16_GPREL:
3475 /* The R_MIPS16_GPREL performs the same calculation as
3476 R_MIPS_GPREL16, but stores the relocated bits in a different
3477 order. We don't need to do anything special here; the
3478 differences are handled in mips_elf_perform_relocation. */
3479 case R_MIPS_GPREL16:
3480 /* Only sign-extend the addend if it was extracted from the
3481 instruction. If the addend was separate, leave it alone,
3482 otherwise we may lose significant bits. */
3483 if (howto->partial_inplace)
3484 addend = _bfd_mips_elf_sign_extend (addend, 16);
3485 value = symbol + addend - gp;
3486 /* If the symbol was local, any earlier relocatable links will
3487 have adjusted its addend with the gp offset, so compensate
3488 for that now. Don't do it for symbols forced local in this
3489 link, though, since they won't have had the gp offset applied
3490 to them before. */
3491 if (was_local_p)
3492 value += gp0;
3493 overflowed_p = mips_elf_overflow_p (value, 16);
3494 break;
3495
3496 case R_MIPS_GOT16:
3497 case R_MIPS_CALL16:
3498 if (local_p)
3499 {
3500 bfd_boolean forced;
3501
3502 /* The special case is when the symbol is forced to be local. We
3503 need the full address in the GOT since no R_MIPS_LO16 relocation
3504 follows. */
3505 forced = ! mips_elf_local_relocation_p (input_bfd, relocation,
3506 local_sections, FALSE);
3507 value = mips_elf_got16_entry (abfd, input_bfd, info,
3508 symbol + addend, forced);
3509 if (value == MINUS_ONE)
3510 return bfd_reloc_outofrange;
3511 value
3512 = mips_elf_got_offset_from_index (elf_hash_table (info)->dynobj,
3513 abfd, input_bfd, value);
3514 overflowed_p = mips_elf_overflow_p (value, 16);
3515 break;
3516 }
3517
3518 /* Fall through. */
3519
3520 case R_MIPS_GOT_DISP:
3521 got_disp:
3522 value = g;
3523 overflowed_p = mips_elf_overflow_p (value, 16);
3524 break;
3525
3526 case R_MIPS_GPREL32:
3527 value = (addend + symbol + gp0 - gp);
3528 if (!save_addend)
3529 value &= howto->dst_mask;
3530 break;
3531
3532 case R_MIPS_PC16:
3533 value = _bfd_mips_elf_sign_extend (addend, 16) + symbol - p;
3534 overflowed_p = mips_elf_overflow_p (value, 16);
3535 break;
3536
3537 case R_MIPS_GOT_HI16:
3538 case R_MIPS_CALL_HI16:
3539 /* We're allowed to handle these two relocations identically.
3540 The dynamic linker is allowed to handle the CALL relocations
3541 differently by creating a lazy evaluation stub. */
3542 value = g;
3543 value = mips_elf_high (value);
3544 value &= howto->dst_mask;
3545 break;
3546
3547 case R_MIPS_GOT_LO16:
3548 case R_MIPS_CALL_LO16:
3549 value = g & howto->dst_mask;
3550 break;
3551
3552 case R_MIPS_GOT_PAGE:
3553 /* GOT_PAGE relocations that reference non-local symbols decay
3554 to GOT_DISP. The corresponding GOT_OFST relocation decays to
3555 0. */
3556 if (! local_p)
3557 goto got_disp;
3558 value = mips_elf_got_page (abfd, input_bfd, info, symbol + addend, NULL);
3559 if (value == MINUS_ONE)
3560 return bfd_reloc_outofrange;
3561 value = mips_elf_got_offset_from_index (elf_hash_table (info)->dynobj,
3562 abfd, input_bfd, value);
3563 overflowed_p = mips_elf_overflow_p (value, 16);
3564 break;
3565
3566 case R_MIPS_GOT_OFST:
3567 if (local_p)
3568 mips_elf_got_page (abfd, input_bfd, info, symbol + addend, &value);
3569 else
3570 value = addend;
3571 overflowed_p = mips_elf_overflow_p (value, 16);
3572 break;
3573
3574 case R_MIPS_SUB:
3575 value = symbol - addend;
3576 value &= howto->dst_mask;
3577 break;
3578
3579 case R_MIPS_HIGHER:
3580 value = mips_elf_higher (addend + symbol);
3581 value &= howto->dst_mask;
3582 break;
3583
3584 case R_MIPS_HIGHEST:
3585 value = mips_elf_highest (addend + symbol);
3586 value &= howto->dst_mask;
3587 break;
3588
3589 case R_MIPS_SCN_DISP:
3590 value = symbol + addend - sec->output_offset;
3591 value &= howto->dst_mask;
3592 break;
3593
3594 case R_MIPS_PJUMP:
3595 case R_MIPS_JALR:
3596 /* Both of these may be ignored. R_MIPS_JALR is an optimization
3597 hint; we could improve performance by honoring that hint. */
3598 return bfd_reloc_continue;
3599
3600 case R_MIPS_GNU_VTINHERIT:
3601 case R_MIPS_GNU_VTENTRY:
3602 /* We don't do anything with these at present. */
3603 return bfd_reloc_continue;
3604
3605 default:
3606 /* An unrecognized relocation type. */
3607 return bfd_reloc_notsupported;
3608 }
3609
3610 /* Store the VALUE for our caller. */
3611 *valuep = value;
3612 return overflowed_p ? bfd_reloc_overflow : bfd_reloc_ok;
3613 }
3614
3615 /* Obtain the field relocated by RELOCATION. */
3616
3617 static bfd_vma
3618 mips_elf_obtain_contents (reloc_howto_type *howto,
3619 const Elf_Internal_Rela *relocation,
3620 bfd *input_bfd, bfd_byte *contents)
3621 {
3622 bfd_vma x;
3623 bfd_byte *location = contents + relocation->r_offset;
3624
3625 /* Obtain the bytes. */
3626 x = bfd_get ((8 * bfd_get_reloc_size (howto)), input_bfd, location);
3627
3628 if ((ELF_R_TYPE (input_bfd, relocation->r_info) == R_MIPS16_26
3629 || ELF_R_TYPE (input_bfd, relocation->r_info) == R_MIPS16_GPREL)
3630 && bfd_little_endian (input_bfd))
3631 /* The two 16-bit words will be reversed on a little-endian system.
3632 See mips_elf_perform_relocation for more details. */
3633 x = (((x & 0xffff) << 16) | ((x & 0xffff0000) >> 16));
3634
3635 return x;
3636 }
3637
3638 /* It has been determined that the result of the RELOCATION is the
3639 VALUE. Use HOWTO to place VALUE into the output file at the
3640 appropriate position. The SECTION is the section to which the
3641 relocation applies. If REQUIRE_JALX is TRUE, then the opcode used
3642 for the relocation must be either JAL or JALX, and it is
3643 unconditionally converted to JALX.
3644
3645 Returns FALSE if anything goes wrong. */
3646
3647 static bfd_boolean
3648 mips_elf_perform_relocation (struct bfd_link_info *info,
3649 reloc_howto_type *howto,
3650 const Elf_Internal_Rela *relocation,
3651 bfd_vma value, bfd *input_bfd,
3652 asection *input_section, bfd_byte *contents,
3653 bfd_boolean require_jalx)
3654 {
3655 bfd_vma x;
3656 bfd_byte *location;
3657 int r_type = ELF_R_TYPE (input_bfd, relocation->r_info);
3658
3659 /* Figure out where the relocation is occurring. */
3660 location = contents + relocation->r_offset;
3661
3662 /* Obtain the current value. */
3663 x = mips_elf_obtain_contents (howto, relocation, input_bfd, contents);
3664
3665 /* Clear the field we are setting. */
3666 x &= ~howto->dst_mask;
3667
3668 /* If this is the R_MIPS16_26 relocation, we must store the
3669 value in a funny way. */
3670 if (r_type == R_MIPS16_26)
3671 {
3672 /* R_MIPS16_26 is used for the mips16 jal and jalx instructions.
3673 Most mips16 instructions are 16 bits, but these instructions
3674 are 32 bits.
3675
3676 The format of these instructions is:
3677
3678 +--------------+--------------------------------+
3679 ! JALX ! X! Imm 20:16 ! Imm 25:21 !
3680 +--------------+--------------------------------+
3681 ! Immediate 15:0 !
3682 +-----------------------------------------------+
3683
3684 JALX is the 5-bit value 00011. X is 0 for jal, 1 for jalx.
3685 Note that the immediate value in the first word is swapped.
3686
3687 When producing a relocatable object file, R_MIPS16_26 is
3688 handled mostly like R_MIPS_26. In particular, the addend is
3689 stored as a straight 26-bit value in a 32-bit instruction.
3690 (gas makes life simpler for itself by never adjusting a
3691 R_MIPS16_26 reloc to be against a section, so the addend is
3692 always zero). However, the 32 bit instruction is stored as 2
3693 16-bit values, rather than a single 32-bit value. In a
3694 big-endian file, the result is the same; in a little-endian
3695 file, the two 16-bit halves of the 32 bit value are swapped.
3696 This is so that a disassembler can recognize the jal
3697 instruction.
3698
3699 When doing a final link, R_MIPS16_26 is treated as a 32 bit
3700 instruction stored as two 16-bit values. The addend A is the
3701 contents of the targ26 field. The calculation is the same as
3702 R_MIPS_26. When storing the calculated value, reorder the
3703 immediate value as shown above, and don't forget to store the
3704 value as two 16-bit values.
3705
3706 To put it in MIPS ABI terms, the relocation field is T-targ26-16,
3707 defined as
3708
3709 big-endian:
3710 +--------+----------------------+
3711 | | |
3712 | | targ26-16 |
3713 |31 26|25 0|
3714 +--------+----------------------+
3715
3716 little-endian:
3717 +----------+------+-------------+
3718 | | | |
3719 | sub1 | | sub2 |
3720 |0 9|10 15|16 31|
3721 +----------+--------------------+
3722 where targ26-16 is sub1 followed by sub2 (i.e., the addend field A is
3723 ((sub1 << 16) | sub2)).
3724
3725 When producing a relocatable object file, the calculation is
3726 (((A < 2) | ((P + 4) & 0xf0000000) + S) >> 2)
3727 When producing a fully linked file, the calculation is
3728 let R = (((A < 2) | ((P + 4) & 0xf0000000) + S) >> 2)
3729 ((R & 0x1f0000) << 5) | ((R & 0x3e00000) >> 5) | (R & 0xffff) */
3730
3731 if (!info->relocatable)
3732 /* Shuffle the bits according to the formula above. */
3733 value = (((value & 0x1f0000) << 5)
3734 | ((value & 0x3e00000) >> 5)
3735 | (value & 0xffff));
3736 }
3737 else if (r_type == R_MIPS16_GPREL)
3738 {
3739 /* R_MIPS16_GPREL is used for GP-relative addressing in mips16
3740 mode. A typical instruction will have a format like this:
3741
3742 +--------------+--------------------------------+
3743 ! EXTEND ! Imm 10:5 ! Imm 15:11 !
3744 +--------------+--------------------------------+
3745 ! Major ! rx ! ry ! Imm 4:0 !
3746 +--------------+--------------------------------+
3747
3748 EXTEND is the five bit value 11110. Major is the instruction
3749 opcode.
3750
3751 This is handled exactly like R_MIPS_GPREL16, except that the
3752 addend is retrieved and stored as shown in this diagram; that
3753 is, the Imm fields above replace the V-rel16 field.
3754
3755 All we need to do here is shuffle the bits appropriately. As
3756 above, the two 16-bit halves must be swapped on a
3757 little-endian system. */
3758 value = (((value & 0x7e0) << 16)
3759 | ((value & 0xf800) << 5)
3760 | (value & 0x1f));
3761 }
3762
3763 /* Set the field. */
3764 x |= (value & howto->dst_mask);
3765
3766 /* If required, turn JAL into JALX. */
3767 if (require_jalx)
3768 {
3769 bfd_boolean ok;
3770 bfd_vma opcode = x >> 26;
3771 bfd_vma jalx_opcode;
3772
3773 /* Check to see if the opcode is already JAL or JALX. */
3774 if (r_type == R_MIPS16_26)
3775 {
3776 ok = ((opcode == 0x6) || (opcode == 0x7));
3777 jalx_opcode = 0x7;
3778 }
3779 else
3780 {
3781 ok = ((opcode == 0x3) || (opcode == 0x1d));
3782 jalx_opcode = 0x1d;
3783 }
3784
3785 /* If the opcode is not JAL or JALX, there's a problem. */
3786 if (!ok)
3787 {
3788 (*_bfd_error_handler)
3789 (_("%s: %s+0x%lx: jump to stub routine which is not jal"),
3790 bfd_archive_filename (input_bfd),
3791 input_section->name,
3792 (unsigned long) relocation->r_offset);
3793 bfd_set_error (bfd_error_bad_value);
3794 return FALSE;
3795 }
3796
3797 /* Make this the JALX opcode. */
3798 x = (x & ~(0x3f << 26)) | (jalx_opcode << 26);
3799 }
3800
3801 /* Swap the high- and low-order 16 bits on little-endian systems
3802 when doing a MIPS16 relocation. */
3803 if ((r_type == R_MIPS16_GPREL || r_type == R_MIPS16_26)
3804 && bfd_little_endian (input_bfd))
3805 x = (((x & 0xffff) << 16) | ((x & 0xffff0000) >> 16));
3806
3807 /* Put the value into the output. */
3808 bfd_put (8 * bfd_get_reloc_size (howto), input_bfd, x, location);
3809 return TRUE;
3810 }
3811
3812 /* Returns TRUE if SECTION is a MIPS16 stub section. */
3813
3814 static bfd_boolean
3815 mips_elf_stub_section_p (bfd *abfd ATTRIBUTE_UNUSED, asection *section)
3816 {
3817 const char *name = bfd_get_section_name (abfd, section);
3818
3819 return (strncmp (name, FN_STUB, sizeof FN_STUB - 1) == 0
3820 || strncmp (name, CALL_STUB, sizeof CALL_STUB - 1) == 0
3821 || strncmp (name, CALL_FP_STUB, sizeof CALL_FP_STUB - 1) == 0);
3822 }
3823 \f
3824 /* Add room for N relocations to the .rel.dyn section in ABFD. */
3825
3826 static void
3827 mips_elf_allocate_dynamic_relocations (bfd *abfd, unsigned int n)
3828 {
3829 asection *s;
3830
3831 s = mips_elf_rel_dyn_section (abfd, FALSE);
3832 BFD_ASSERT (s != NULL);
3833
3834 if (s->_raw_size == 0)
3835 {
3836 /* Make room for a null element. */
3837 s->_raw_size += MIPS_ELF_REL_SIZE (abfd);
3838 ++s->reloc_count;
3839 }
3840 s->_raw_size += n * MIPS_ELF_REL_SIZE (abfd);
3841 }
3842
3843 /* Create a rel.dyn relocation for the dynamic linker to resolve. REL
3844 is the original relocation, which is now being transformed into a
3845 dynamic relocation. The ADDENDP is adjusted if necessary; the
3846 caller should store the result in place of the original addend. */
3847
3848 static bfd_boolean
3849 mips_elf_create_dynamic_relocation (bfd *output_bfd,
3850 struct bfd_link_info *info,
3851 const Elf_Internal_Rela *rel,
3852 struct mips_elf_link_hash_entry *h,
3853 asection *sec, bfd_vma symbol,
3854 bfd_vma *addendp, asection *input_section)
3855 {
3856 Elf_Internal_Rela outrel[3];
3857 bfd_boolean skip;
3858 asection *sreloc;
3859 bfd *dynobj;
3860 int r_type;
3861
3862 r_type = ELF_R_TYPE (output_bfd, rel->r_info);
3863 dynobj = elf_hash_table (info)->dynobj;
3864 sreloc = mips_elf_rel_dyn_section (dynobj, FALSE);
3865 BFD_ASSERT (sreloc != NULL);
3866 BFD_ASSERT (sreloc->contents != NULL);
3867 BFD_ASSERT (sreloc->reloc_count * MIPS_ELF_REL_SIZE (output_bfd)
3868 < sreloc->_raw_size);
3869
3870 skip = FALSE;
3871 outrel[0].r_offset =
3872 _bfd_elf_section_offset (output_bfd, info, input_section, rel[0].r_offset);
3873 outrel[1].r_offset =
3874 _bfd_elf_section_offset (output_bfd, info, input_section, rel[1].r_offset);
3875 outrel[2].r_offset =
3876 _bfd_elf_section_offset (output_bfd, info, input_section, rel[2].r_offset);
3877
3878 #if 0
3879 /* We begin by assuming that the offset for the dynamic relocation
3880 is the same as for the original relocation. We'll adjust this
3881 later to reflect the correct output offsets. */
3882 if (input_section->sec_info_type != ELF_INFO_TYPE_STABS)
3883 {
3884 outrel[1].r_offset = rel[1].r_offset;
3885 outrel[2].r_offset = rel[2].r_offset;
3886 }
3887 else
3888 {
3889 /* Except that in a stab section things are more complex.
3890 Because we compress stab information, the offset given in the
3891 relocation may not be the one we want; we must let the stabs
3892 machinery tell us the offset. */
3893 outrel[1].r_offset = outrel[0].r_offset;
3894 outrel[2].r_offset = outrel[0].r_offset;
3895 /* If we didn't need the relocation at all, this value will be
3896 -1. */
3897 if (outrel[0].r_offset == (bfd_vma) -1)
3898 skip = TRUE;
3899 }
3900 #endif
3901
3902 if (outrel[0].r_offset == (bfd_vma) -1)
3903 /* The relocation field has been deleted. */
3904 skip = TRUE;
3905 else if (outrel[0].r_offset == (bfd_vma) -2)
3906 {
3907 /* The relocation field has been converted into a relative value of
3908 some sort. Functions like _bfd_elf_write_section_eh_frame expect
3909 the field to be fully relocated, so add in the symbol's value. */
3910 skip = TRUE;
3911 *addendp += symbol;
3912 }
3913
3914 /* If we've decided to skip this relocation, just output an empty
3915 record. Note that R_MIPS_NONE == 0, so that this call to memset
3916 is a way of setting R_TYPE to R_MIPS_NONE. */
3917 if (skip)
3918 memset (outrel, 0, sizeof (Elf_Internal_Rela) * 3);
3919 else
3920 {
3921 long indx;
3922 bfd_boolean defined_p;
3923
3924 /* We must now calculate the dynamic symbol table index to use
3925 in the relocation. */
3926 if (h != NULL
3927 && (! info->symbolic || (h->root.elf_link_hash_flags
3928 & ELF_LINK_HASH_DEF_REGULAR) == 0)
3929 /* h->root.dynindx may be -1 if this symbol was marked to
3930 become local. */
3931 && h->root.dynindx != -1)
3932 {
3933 indx = h->root.dynindx;
3934 if (SGI_COMPAT (output_bfd))
3935 defined_p = ((h->root.elf_link_hash_flags
3936 & ELF_LINK_HASH_DEF_REGULAR) != 0);
3937 else
3938 /* ??? glibc's ld.so just adds the final GOT entry to the
3939 relocation field. It therefore treats relocs against
3940 defined symbols in the same way as relocs against
3941 undefined symbols. */
3942 defined_p = FALSE;
3943 }
3944 else
3945 {
3946 if (sec != NULL && bfd_is_abs_section (sec))
3947 indx = 0;
3948 else if (sec == NULL || sec->owner == NULL)
3949 {
3950 bfd_set_error (bfd_error_bad_value);
3951 return FALSE;
3952 }
3953 else
3954 {
3955 indx = elf_section_data (sec->output_section)->dynindx;
3956 if (indx == 0)
3957 abort ();
3958 }
3959
3960 /* Instead of generating a relocation using the section
3961 symbol, we may as well make it a fully relative
3962 relocation. We want to avoid generating relocations to
3963 local symbols because we used to generate them
3964 incorrectly, without adding the original symbol value,
3965 which is mandated by the ABI for section symbols. In
3966 order to give dynamic loaders and applications time to
3967 phase out the incorrect use, we refrain from emitting
3968 section-relative relocations. It's not like they're
3969 useful, after all. This should be a bit more efficient
3970 as well. */
3971 /* ??? Although this behavior is compatible with glibc's ld.so,
3972 the ABI says that relocations against STN_UNDEF should have
3973 a symbol value of 0. Irix rld honors this, so relocations
3974 against STN_UNDEF have no effect. */
3975 if (!SGI_COMPAT (output_bfd))
3976 indx = 0;
3977 defined_p = TRUE;
3978 }
3979
3980 /* If the relocation was previously an absolute relocation and
3981 this symbol will not be referred to by the relocation, we must
3982 adjust it by the value we give it in the dynamic symbol table.
3983 Otherwise leave the job up to the dynamic linker. */
3984 if (defined_p && r_type != R_MIPS_REL32)
3985 *addendp += symbol;
3986
3987 /* The relocation is always an REL32 relocation because we don't
3988 know where the shared library will wind up at load-time. */
3989 outrel[0].r_info = ELF_R_INFO (output_bfd, (unsigned long) indx,
3990 R_MIPS_REL32);
3991 /* For strict adherence to the ABI specification, we should
3992 generate a R_MIPS_64 relocation record by itself before the
3993 _REL32/_64 record as well, such that the addend is read in as
3994 a 64-bit value (REL32 is a 32-bit relocation, after all).
3995 However, since none of the existing ELF64 MIPS dynamic
3996 loaders seems to care, we don't waste space with these
3997 artificial relocations. If this turns out to not be true,
3998 mips_elf_allocate_dynamic_relocation() should be tweaked so
3999 as to make room for a pair of dynamic relocations per
4000 invocation if ABI_64_P, and here we should generate an
4001 additional relocation record with R_MIPS_64 by itself for a
4002 NULL symbol before this relocation record. */
4003 outrel[1].r_info = ELF_R_INFO (output_bfd, 0,
4004 ABI_64_P (output_bfd)
4005 ? R_MIPS_64
4006 : R_MIPS_NONE);
4007 outrel[2].r_info = ELF_R_INFO (output_bfd, 0, R_MIPS_NONE);
4008
4009 /* Adjust the output offset of the relocation to reference the
4010 correct location in the output file. */
4011 outrel[0].r_offset += (input_section->output_section->vma
4012 + input_section->output_offset);
4013 outrel[1].r_offset += (input_section->output_section->vma
4014 + input_section->output_offset);
4015 outrel[2].r_offset += (input_section->output_section->vma
4016 + input_section->output_offset);
4017 }
4018
4019 /* Put the relocation back out. We have to use the special
4020 relocation outputter in the 64-bit case since the 64-bit
4021 relocation format is non-standard. */
4022 if (ABI_64_P (output_bfd))
4023 {
4024 (*get_elf_backend_data (output_bfd)->s->swap_reloc_out)
4025 (output_bfd, &outrel[0],
4026 (sreloc->contents
4027 + sreloc->reloc_count * sizeof (Elf64_Mips_External_Rel)));
4028 }
4029 else
4030 bfd_elf32_swap_reloc_out
4031 (output_bfd, &outrel[0],
4032 (sreloc->contents + sreloc->reloc_count * sizeof (Elf32_External_Rel)));
4033
4034 /* We've now added another relocation. */
4035 ++sreloc->reloc_count;
4036
4037 /* Make sure the output section is writable. The dynamic linker
4038 will be writing to it. */
4039 elf_section_data (input_section->output_section)->this_hdr.sh_flags
4040 |= SHF_WRITE;
4041
4042 /* On IRIX5, make an entry of compact relocation info. */
4043 if (! skip && IRIX_COMPAT (output_bfd) == ict_irix5)
4044 {
4045 asection *scpt = bfd_get_section_by_name (dynobj, ".compact_rel");
4046 bfd_byte *cr;
4047
4048 if (scpt)
4049 {
4050 Elf32_crinfo cptrel;
4051
4052 mips_elf_set_cr_format (cptrel, CRF_MIPS_LONG);
4053 cptrel.vaddr = (rel->r_offset
4054 + input_section->output_section->vma
4055 + input_section->output_offset);
4056 if (r_type == R_MIPS_REL32)
4057 mips_elf_set_cr_type (cptrel, CRT_MIPS_REL32);
4058 else
4059 mips_elf_set_cr_type (cptrel, CRT_MIPS_WORD);
4060 mips_elf_set_cr_dist2to (cptrel, 0);
4061 cptrel.konst = *addendp;
4062
4063 cr = (scpt->contents
4064 + sizeof (Elf32_External_compact_rel));
4065 bfd_elf32_swap_crinfo_out (output_bfd, &cptrel,
4066 ((Elf32_External_crinfo *) cr
4067 + scpt->reloc_count));
4068 ++scpt->reloc_count;
4069 }
4070 }
4071
4072 return TRUE;
4073 }
4074 \f
4075 /* Return the MACH for a MIPS e_flags value. */
4076
4077 unsigned long
4078 _bfd_elf_mips_mach (flagword flags)
4079 {
4080 switch (flags & EF_MIPS_MACH)
4081 {
4082 case E_MIPS_MACH_3900:
4083 return bfd_mach_mips3900;
4084
4085 case E_MIPS_MACH_4010:
4086 return bfd_mach_mips4010;
4087
4088 case E_MIPS_MACH_4100:
4089 return bfd_mach_mips4100;
4090
4091 case E_MIPS_MACH_4111:
4092 return bfd_mach_mips4111;
4093
4094 case E_MIPS_MACH_4120:
4095 return bfd_mach_mips4120;
4096
4097 case E_MIPS_MACH_4650:
4098 return bfd_mach_mips4650;
4099
4100 case E_MIPS_MACH_5400:
4101 return bfd_mach_mips5400;
4102
4103 case E_MIPS_MACH_5500:
4104 return bfd_mach_mips5500;
4105
4106 case E_MIPS_MACH_SB1:
4107 return bfd_mach_mips_sb1;
4108
4109 default:
4110 switch (flags & EF_MIPS_ARCH)
4111 {
4112 default:
4113 case E_MIPS_ARCH_1:
4114 return bfd_mach_mips3000;
4115 break;
4116
4117 case E_MIPS_ARCH_2:
4118 return bfd_mach_mips6000;
4119 break;
4120
4121 case E_MIPS_ARCH_3:
4122 return bfd_mach_mips4000;
4123 break;
4124
4125 case E_MIPS_ARCH_4:
4126 return bfd_mach_mips8000;
4127 break;
4128
4129 case E_MIPS_ARCH_5:
4130 return bfd_mach_mips5;
4131 break;
4132
4133 case E_MIPS_ARCH_32:
4134 return bfd_mach_mipsisa32;
4135 break;
4136
4137 case E_MIPS_ARCH_64:
4138 return bfd_mach_mipsisa64;
4139 break;
4140
4141 case E_MIPS_ARCH_32R2:
4142 return bfd_mach_mipsisa32r2;
4143 break;
4144
4145 case E_MIPS_ARCH_64R2:
4146 return bfd_mach_mipsisa64r2;
4147 break;
4148 }
4149 }
4150
4151 return 0;
4152 }
4153
4154 /* Return printable name for ABI. */
4155
4156 static INLINE char *
4157 elf_mips_abi_name (bfd *abfd)
4158 {
4159 flagword flags;
4160
4161 flags = elf_elfheader (abfd)->e_flags;
4162 switch (flags & EF_MIPS_ABI)
4163 {
4164 case 0:
4165 if (ABI_N32_P (abfd))
4166 return "N32";
4167 else if (ABI_64_P (abfd))
4168 return "64";
4169 else
4170 return "none";
4171 case E_MIPS_ABI_O32:
4172 return "O32";
4173 case E_MIPS_ABI_O64:
4174 return "O64";
4175 case E_MIPS_ABI_EABI32:
4176 return "EABI32";
4177 case E_MIPS_ABI_EABI64:
4178 return "EABI64";
4179 default:
4180 return "unknown abi";
4181 }
4182 }
4183 \f
4184 /* MIPS ELF uses two common sections. One is the usual one, and the
4185 other is for small objects. All the small objects are kept
4186 together, and then referenced via the gp pointer, which yields
4187 faster assembler code. This is what we use for the small common
4188 section. This approach is copied from ecoff.c. */
4189 static asection mips_elf_scom_section;
4190 static asymbol mips_elf_scom_symbol;
4191 static asymbol *mips_elf_scom_symbol_ptr;
4192
4193 /* MIPS ELF also uses an acommon section, which represents an
4194 allocated common symbol which may be overridden by a
4195 definition in a shared library. */
4196 static asection mips_elf_acom_section;
4197 static asymbol mips_elf_acom_symbol;
4198 static asymbol *mips_elf_acom_symbol_ptr;
4199
4200 /* Handle the special MIPS section numbers that a symbol may use.
4201 This is used for both the 32-bit and the 64-bit ABI. */
4202
4203 void
4204 _bfd_mips_elf_symbol_processing (bfd *abfd, asymbol *asym)
4205 {
4206 elf_symbol_type *elfsym;
4207
4208 elfsym = (elf_symbol_type *) asym;
4209 switch (elfsym->internal_elf_sym.st_shndx)
4210 {
4211 case SHN_MIPS_ACOMMON:
4212 /* This section is used in a dynamically linked executable file.
4213 It is an allocated common section. The dynamic linker can
4214 either resolve these symbols to something in a shared
4215 library, or it can just leave them here. For our purposes,
4216 we can consider these symbols to be in a new section. */
4217 if (mips_elf_acom_section.name == NULL)
4218 {
4219 /* Initialize the acommon section. */
4220 mips_elf_acom_section.name = ".acommon";
4221 mips_elf_acom_section.flags = SEC_ALLOC;
4222 mips_elf_acom_section.output_section = &mips_elf_acom_section;
4223 mips_elf_acom_section.symbol = &mips_elf_acom_symbol;
4224 mips_elf_acom_section.symbol_ptr_ptr = &mips_elf_acom_symbol_ptr;
4225 mips_elf_acom_symbol.name = ".acommon";
4226 mips_elf_acom_symbol.flags = BSF_SECTION_SYM;
4227 mips_elf_acom_symbol.section = &mips_elf_acom_section;
4228 mips_elf_acom_symbol_ptr = &mips_elf_acom_symbol;
4229 }
4230 asym->section = &mips_elf_acom_section;
4231 break;
4232
4233 case SHN_COMMON:
4234 /* Common symbols less than the GP size are automatically
4235 treated as SHN_MIPS_SCOMMON symbols on IRIX5. */
4236 if (asym->value > elf_gp_size (abfd)
4237 || IRIX_COMPAT (abfd) == ict_irix6)
4238 break;
4239 /* Fall through. */
4240 case SHN_MIPS_SCOMMON:
4241 if (mips_elf_scom_section.name == NULL)
4242 {
4243 /* Initialize the small common section. */
4244 mips_elf_scom_section.name = ".scommon";
4245 mips_elf_scom_section.flags = SEC_IS_COMMON;
4246 mips_elf_scom_section.output_section = &mips_elf_scom_section;
4247 mips_elf_scom_section.symbol = &mips_elf_scom_symbol;
4248 mips_elf_scom_section.symbol_ptr_ptr = &mips_elf_scom_symbol_ptr;
4249 mips_elf_scom_symbol.name = ".scommon";
4250 mips_elf_scom_symbol.flags = BSF_SECTION_SYM;
4251 mips_elf_scom_symbol.section = &mips_elf_scom_section;
4252 mips_elf_scom_symbol_ptr = &mips_elf_scom_symbol;
4253 }
4254 asym->section = &mips_elf_scom_section;
4255 asym->value = elfsym->internal_elf_sym.st_size;
4256 break;
4257
4258 case SHN_MIPS_SUNDEFINED:
4259 asym->section = bfd_und_section_ptr;
4260 break;
4261
4262 #if 0 /* for SGI_COMPAT */
4263 case SHN_MIPS_TEXT:
4264 asym->section = mips_elf_text_section_ptr;
4265 break;
4266
4267 case SHN_MIPS_DATA:
4268 asym->section = mips_elf_data_section_ptr;
4269 break;
4270 #endif
4271 }
4272 }
4273 \f
4274 /* There appears to be a bug in the MIPSpro linker that causes GOT_DISP
4275 relocations against two unnamed section symbols to resolve to the
4276 same address. For example, if we have code like:
4277
4278 lw $4,%got_disp(.data)($gp)
4279 lw $25,%got_disp(.text)($gp)
4280 jalr $25
4281
4282 then the linker will resolve both relocations to .data and the program
4283 will jump there rather than to .text.
4284
4285 We can work around this problem by giving names to local section symbols.
4286 This is also what the MIPSpro tools do. */
4287
4288 bfd_boolean
4289 _bfd_mips_elf_name_local_section_symbols (bfd *abfd)
4290 {
4291 return SGI_COMPAT (abfd);
4292 }
4293 \f
4294 /* Work over a section just before writing it out. This routine is
4295 used by both the 32-bit and the 64-bit ABI. FIXME: We recognize
4296 sections that need the SHF_MIPS_GPREL flag by name; there has to be
4297 a better way. */
4298
4299 bfd_boolean
4300 _bfd_mips_elf_section_processing (bfd *abfd, Elf_Internal_Shdr *hdr)
4301 {
4302 if (hdr->sh_type == SHT_MIPS_REGINFO
4303 && hdr->sh_size > 0)
4304 {
4305 bfd_byte buf[4];
4306
4307 BFD_ASSERT (hdr->sh_size == sizeof (Elf32_External_RegInfo));
4308 BFD_ASSERT (hdr->contents == NULL);
4309
4310 if (bfd_seek (abfd,
4311 hdr->sh_offset + sizeof (Elf32_External_RegInfo) - 4,
4312 SEEK_SET) != 0)
4313 return FALSE;
4314 H_PUT_32 (abfd, elf_gp (abfd), buf);
4315 if (bfd_bwrite (buf, 4, abfd) != 4)
4316 return FALSE;
4317 }
4318
4319 if (hdr->sh_type == SHT_MIPS_OPTIONS
4320 && hdr->bfd_section != NULL
4321 && mips_elf_section_data (hdr->bfd_section) != NULL
4322 && mips_elf_section_data (hdr->bfd_section)->u.tdata != NULL)
4323 {
4324 bfd_byte *contents, *l, *lend;
4325
4326 /* We stored the section contents in the tdata field in the
4327 set_section_contents routine. We save the section contents
4328 so that we don't have to read them again.
4329 At this point we know that elf_gp is set, so we can look
4330 through the section contents to see if there is an
4331 ODK_REGINFO structure. */
4332
4333 contents = mips_elf_section_data (hdr->bfd_section)->u.tdata;
4334 l = contents;
4335 lend = contents + hdr->sh_size;
4336 while (l + sizeof (Elf_External_Options) <= lend)
4337 {
4338 Elf_Internal_Options intopt;
4339
4340 bfd_mips_elf_swap_options_in (abfd, (Elf_External_Options *) l,
4341 &intopt);
4342 if (ABI_64_P (abfd) && intopt.kind == ODK_REGINFO)
4343 {
4344 bfd_byte buf[8];
4345
4346 if (bfd_seek (abfd,
4347 (hdr->sh_offset
4348 + (l - contents)
4349 + sizeof (Elf_External_Options)
4350 + (sizeof (Elf64_External_RegInfo) - 8)),
4351 SEEK_SET) != 0)
4352 return FALSE;
4353 H_PUT_64 (abfd, elf_gp (abfd), buf);
4354 if (bfd_bwrite (buf, 8, abfd) != 8)
4355 return FALSE;
4356 }
4357 else if (intopt.kind == ODK_REGINFO)
4358 {
4359 bfd_byte buf[4];
4360
4361 if (bfd_seek (abfd,
4362 (hdr->sh_offset
4363 + (l - contents)
4364 + sizeof (Elf_External_Options)
4365 + (sizeof (Elf32_External_RegInfo) - 4)),
4366 SEEK_SET) != 0)
4367 return FALSE;
4368 H_PUT_32 (abfd, elf_gp (abfd), buf);
4369 if (bfd_bwrite (buf, 4, abfd) != 4)
4370 return FALSE;
4371 }
4372 l += intopt.size;
4373 }
4374 }
4375
4376 if (hdr->bfd_section != NULL)
4377 {
4378 const char *name = bfd_get_section_name (abfd, hdr->bfd_section);
4379
4380 if (strcmp (name, ".sdata") == 0
4381 || strcmp (name, ".lit8") == 0
4382 || strcmp (name, ".lit4") == 0)
4383 {
4384 hdr->sh_flags |= SHF_ALLOC | SHF_WRITE | SHF_MIPS_GPREL;
4385 hdr->sh_type = SHT_PROGBITS;
4386 }
4387 else if (strcmp (name, ".sbss") == 0)
4388 {
4389 hdr->sh_flags |= SHF_ALLOC | SHF_WRITE | SHF_MIPS_GPREL;
4390 hdr->sh_type = SHT_NOBITS;
4391 }
4392 else if (strcmp (name, ".srdata") == 0)
4393 {
4394 hdr->sh_flags |= SHF_ALLOC | SHF_MIPS_GPREL;
4395 hdr->sh_type = SHT_PROGBITS;
4396 }
4397 else if (strcmp (name, ".compact_rel") == 0)
4398 {
4399 hdr->sh_flags = 0;
4400 hdr->sh_type = SHT_PROGBITS;
4401 }
4402 else if (strcmp (name, ".rtproc") == 0)
4403 {
4404 if (hdr->sh_addralign != 0 && hdr->sh_entsize == 0)
4405 {
4406 unsigned int adjust;
4407
4408 adjust = hdr->sh_size % hdr->sh_addralign;
4409 if (adjust != 0)
4410 hdr->sh_size += hdr->sh_addralign - adjust;
4411 }
4412 }
4413 }
4414
4415 return TRUE;
4416 }
4417
4418 /* Handle a MIPS specific section when reading an object file. This
4419 is called when elfcode.h finds a section with an unknown type.
4420 This routine supports both the 32-bit and 64-bit ELF ABI.
4421
4422 FIXME: We need to handle the SHF_MIPS_GPREL flag, but I'm not sure
4423 how to. */
4424
4425 bfd_boolean
4426 _bfd_mips_elf_section_from_shdr (bfd *abfd, Elf_Internal_Shdr *hdr,
4427 const char *name)
4428 {
4429 flagword flags = 0;
4430
4431 /* There ought to be a place to keep ELF backend specific flags, but
4432 at the moment there isn't one. We just keep track of the
4433 sections by their name, instead. Fortunately, the ABI gives
4434 suggested names for all the MIPS specific sections, so we will
4435 probably get away with this. */
4436 switch (hdr->sh_type)
4437 {
4438 case SHT_MIPS_LIBLIST:
4439 if (strcmp (name, ".liblist") != 0)
4440 return FALSE;
4441 break;
4442 case SHT_MIPS_MSYM:
4443 if (strcmp (name, ".msym") != 0)
4444 return FALSE;
4445 break;
4446 case SHT_MIPS_CONFLICT:
4447 if (strcmp (name, ".conflict") != 0)
4448 return FALSE;
4449 break;
4450 case SHT_MIPS_GPTAB:
4451 if (strncmp (name, ".gptab.", sizeof ".gptab." - 1) != 0)
4452 return FALSE;
4453 break;
4454 case SHT_MIPS_UCODE:
4455 if (strcmp (name, ".ucode") != 0)
4456 return FALSE;
4457 break;
4458 case SHT_MIPS_DEBUG:
4459 if (strcmp (name, ".mdebug") != 0)
4460 return FALSE;
4461 flags = SEC_DEBUGGING;
4462 break;
4463 case SHT_MIPS_REGINFO:
4464 if (strcmp (name, ".reginfo") != 0
4465 || hdr->sh_size != sizeof (Elf32_External_RegInfo))
4466 return FALSE;
4467 flags = (SEC_LINK_ONCE | SEC_LINK_DUPLICATES_SAME_SIZE);
4468 break;
4469 case SHT_MIPS_IFACE:
4470 if (strcmp (name, ".MIPS.interfaces") != 0)
4471 return FALSE;
4472 break;
4473 case SHT_MIPS_CONTENT:
4474 if (strncmp (name, ".MIPS.content", sizeof ".MIPS.content" - 1) != 0)
4475 return FALSE;
4476 break;
4477 case SHT_MIPS_OPTIONS:
4478 if (strcmp (name, MIPS_ELF_OPTIONS_SECTION_NAME (abfd)) != 0)
4479 return FALSE;
4480 break;
4481 case SHT_MIPS_DWARF:
4482 if (strncmp (name, ".debug_", sizeof ".debug_" - 1) != 0)
4483 return FALSE;
4484 break;
4485 case SHT_MIPS_SYMBOL_LIB:
4486 if (strcmp (name, ".MIPS.symlib") != 0)
4487 return FALSE;
4488 break;
4489 case SHT_MIPS_EVENTS:
4490 if (strncmp (name, ".MIPS.events", sizeof ".MIPS.events" - 1) != 0
4491 && strncmp (name, ".MIPS.post_rel",
4492 sizeof ".MIPS.post_rel" - 1) != 0)
4493 return FALSE;
4494 break;
4495 default:
4496 return FALSE;
4497 }
4498
4499 if (! _bfd_elf_make_section_from_shdr (abfd, hdr, name))
4500 return FALSE;
4501
4502 if (flags)
4503 {
4504 if (! bfd_set_section_flags (abfd, hdr->bfd_section,
4505 (bfd_get_section_flags (abfd,
4506 hdr->bfd_section)
4507 | flags)))
4508 return FALSE;
4509 }
4510
4511 /* FIXME: We should record sh_info for a .gptab section. */
4512
4513 /* For a .reginfo section, set the gp value in the tdata information
4514 from the contents of this section. We need the gp value while
4515 processing relocs, so we just get it now. The .reginfo section
4516 is not used in the 64-bit MIPS ELF ABI. */
4517 if (hdr->sh_type == SHT_MIPS_REGINFO)
4518 {
4519 Elf32_External_RegInfo ext;
4520 Elf32_RegInfo s;
4521
4522 if (! bfd_get_section_contents (abfd, hdr->bfd_section,
4523 &ext, 0, sizeof ext))
4524 return FALSE;
4525 bfd_mips_elf32_swap_reginfo_in (abfd, &ext, &s);
4526 elf_gp (abfd) = s.ri_gp_value;
4527 }
4528
4529 /* For a SHT_MIPS_OPTIONS section, look for a ODK_REGINFO entry, and
4530 set the gp value based on what we find. We may see both
4531 SHT_MIPS_REGINFO and SHT_MIPS_OPTIONS/ODK_REGINFO; in that case,
4532 they should agree. */
4533 if (hdr->sh_type == SHT_MIPS_OPTIONS)
4534 {
4535 bfd_byte *contents, *l, *lend;
4536
4537 contents = bfd_malloc (hdr->sh_size);
4538 if (contents == NULL)
4539 return FALSE;
4540 if (! bfd_get_section_contents (abfd, hdr->bfd_section, contents,
4541 0, hdr->sh_size))
4542 {
4543 free (contents);
4544 return FALSE;
4545 }
4546 l = contents;
4547 lend = contents + hdr->sh_size;
4548 while (l + sizeof (Elf_External_Options) <= lend)
4549 {
4550 Elf_Internal_Options intopt;
4551
4552 bfd_mips_elf_swap_options_in (abfd, (Elf_External_Options *) l,
4553 &intopt);
4554 if (ABI_64_P (abfd) && intopt.kind == ODK_REGINFO)
4555 {
4556 Elf64_Internal_RegInfo intreg;
4557
4558 bfd_mips_elf64_swap_reginfo_in
4559 (abfd,
4560 ((Elf64_External_RegInfo *)
4561 (l + sizeof (Elf_External_Options))),
4562 &intreg);
4563 elf_gp (abfd) = intreg.ri_gp_value;
4564 }
4565 else if (intopt.kind == ODK_REGINFO)
4566 {
4567 Elf32_RegInfo intreg;
4568
4569 bfd_mips_elf32_swap_reginfo_in
4570 (abfd,
4571 ((Elf32_External_RegInfo *)
4572 (l + sizeof (Elf_External_Options))),
4573 &intreg);
4574 elf_gp (abfd) = intreg.ri_gp_value;
4575 }
4576 l += intopt.size;
4577 }
4578 free (contents);
4579 }
4580
4581 return TRUE;
4582 }
4583
4584 /* Set the correct type for a MIPS ELF section. We do this by the
4585 section name, which is a hack, but ought to work. This routine is
4586 used by both the 32-bit and the 64-bit ABI. */
4587
4588 bfd_boolean
4589 _bfd_mips_elf_fake_sections (bfd *abfd, Elf_Internal_Shdr *hdr, asection *sec)
4590 {
4591 register const char *name;
4592
4593 name = bfd_get_section_name (abfd, sec);
4594
4595 if (strcmp (name, ".liblist") == 0)
4596 {
4597 hdr->sh_type = SHT_MIPS_LIBLIST;
4598 hdr->sh_info = sec->_raw_size / sizeof (Elf32_Lib);
4599 /* The sh_link field is set in final_write_processing. */
4600 }
4601 else if (strcmp (name, ".conflict") == 0)
4602 hdr->sh_type = SHT_MIPS_CONFLICT;
4603 else if (strncmp (name, ".gptab.", sizeof ".gptab." - 1) == 0)
4604 {
4605 hdr->sh_type = SHT_MIPS_GPTAB;
4606 hdr->sh_entsize = sizeof (Elf32_External_gptab);
4607 /* The sh_info field is set in final_write_processing. */
4608 }
4609 else if (strcmp (name, ".ucode") == 0)
4610 hdr->sh_type = SHT_MIPS_UCODE;
4611 else if (strcmp (name, ".mdebug") == 0)
4612 {
4613 hdr->sh_type = SHT_MIPS_DEBUG;
4614 /* In a shared object on IRIX 5.3, the .mdebug section has an
4615 entsize of 0. FIXME: Does this matter? */
4616 if (SGI_COMPAT (abfd) && (abfd->flags & DYNAMIC) != 0)
4617 hdr->sh_entsize = 0;
4618 else
4619 hdr->sh_entsize = 1;
4620 }
4621 else if (strcmp (name, ".reginfo") == 0)
4622 {
4623 hdr->sh_type = SHT_MIPS_REGINFO;
4624 /* In a shared object on IRIX 5.3, the .reginfo section has an
4625 entsize of 0x18. FIXME: Does this matter? */
4626 if (SGI_COMPAT (abfd))
4627 {
4628 if ((abfd->flags & DYNAMIC) != 0)
4629 hdr->sh_entsize = sizeof (Elf32_External_RegInfo);
4630 else
4631 hdr->sh_entsize = 1;
4632 }
4633 else
4634 hdr->sh_entsize = sizeof (Elf32_External_RegInfo);
4635 }
4636 else if (SGI_COMPAT (abfd)
4637 && (strcmp (name, ".hash") == 0
4638 || strcmp (name, ".dynamic") == 0
4639 || strcmp (name, ".dynstr") == 0))
4640 {
4641 if (SGI_COMPAT (abfd))
4642 hdr->sh_entsize = 0;
4643 #if 0
4644 /* This isn't how the IRIX6 linker behaves. */
4645 hdr->sh_info = SIZEOF_MIPS_DYNSYM_SECNAMES;
4646 #endif
4647 }
4648 else if (strcmp (name, ".got") == 0
4649 || strcmp (name, ".srdata") == 0
4650 || strcmp (name, ".sdata") == 0
4651 || strcmp (name, ".sbss") == 0
4652 || strcmp (name, ".lit4") == 0
4653 || strcmp (name, ".lit8") == 0)
4654 hdr->sh_flags |= SHF_MIPS_GPREL;
4655 else if (strcmp (name, ".MIPS.interfaces") == 0)
4656 {
4657 hdr->sh_type = SHT_MIPS_IFACE;
4658 hdr->sh_flags |= SHF_MIPS_NOSTRIP;
4659 }
4660 else if (strncmp (name, ".MIPS.content", strlen (".MIPS.content")) == 0)
4661 {
4662 hdr->sh_type = SHT_MIPS_CONTENT;
4663 hdr->sh_flags |= SHF_MIPS_NOSTRIP;
4664 /* The sh_info field is set in final_write_processing. */
4665 }
4666 else if (strcmp (name, MIPS_ELF_OPTIONS_SECTION_NAME (abfd)) == 0)
4667 {
4668 hdr->sh_type = SHT_MIPS_OPTIONS;
4669 hdr->sh_entsize = 1;
4670 hdr->sh_flags |= SHF_MIPS_NOSTRIP;
4671 }
4672 else if (strncmp (name, ".debug_", sizeof ".debug_" - 1) == 0)
4673 hdr->sh_type = SHT_MIPS_DWARF;
4674 else if (strcmp (name, ".MIPS.symlib") == 0)
4675 {
4676 hdr->sh_type = SHT_MIPS_SYMBOL_LIB;
4677 /* The sh_link and sh_info fields are set in
4678 final_write_processing. */
4679 }
4680 else if (strncmp (name, ".MIPS.events", sizeof ".MIPS.events" - 1) == 0
4681 || strncmp (name, ".MIPS.post_rel",
4682 sizeof ".MIPS.post_rel" - 1) == 0)
4683 {
4684 hdr->sh_type = SHT_MIPS_EVENTS;
4685 hdr->sh_flags |= SHF_MIPS_NOSTRIP;
4686 /* The sh_link field is set in final_write_processing. */
4687 }
4688 else if (strcmp (name, ".msym") == 0)
4689 {
4690 hdr->sh_type = SHT_MIPS_MSYM;
4691 hdr->sh_flags |= SHF_ALLOC;
4692 hdr->sh_entsize = 8;
4693 }
4694
4695 /* The generic elf_fake_sections will set up REL_HDR using the default
4696 kind of relocations. We used to set up a second header for the
4697 non-default kind of relocations here, but only NewABI would use
4698 these, and the IRIX ld doesn't like resulting empty RELA sections.
4699 Thus we create those header only on demand now. */
4700
4701 return TRUE;
4702 }
4703
4704 /* Given a BFD section, try to locate the corresponding ELF section
4705 index. This is used by both the 32-bit and the 64-bit ABI.
4706 Actually, it's not clear to me that the 64-bit ABI supports these,
4707 but for non-PIC objects we will certainly want support for at least
4708 the .scommon section. */
4709
4710 bfd_boolean
4711 _bfd_mips_elf_section_from_bfd_section (bfd *abfd ATTRIBUTE_UNUSED,
4712 asection *sec, int *retval)
4713 {
4714 if (strcmp (bfd_get_section_name (abfd, sec), ".scommon") == 0)
4715 {
4716 *retval = SHN_MIPS_SCOMMON;
4717 return TRUE;
4718 }
4719 if (strcmp (bfd_get_section_name (abfd, sec), ".acommon") == 0)
4720 {
4721 *retval = SHN_MIPS_ACOMMON;
4722 return TRUE;
4723 }
4724 return FALSE;
4725 }
4726 \f
4727 /* Hook called by the linker routine which adds symbols from an object
4728 file. We must handle the special MIPS section numbers here. */
4729
4730 bfd_boolean
4731 _bfd_mips_elf_add_symbol_hook (bfd *abfd, struct bfd_link_info *info,
4732 const Elf_Internal_Sym *sym, const char **namep,
4733 flagword *flagsp ATTRIBUTE_UNUSED,
4734 asection **secp, bfd_vma *valp)
4735 {
4736 if (SGI_COMPAT (abfd)
4737 && (abfd->flags & DYNAMIC) != 0
4738 && strcmp (*namep, "_rld_new_interface") == 0)
4739 {
4740 /* Skip IRIX5 rld entry name. */
4741 *namep = NULL;
4742 return TRUE;
4743 }
4744
4745 switch (sym->st_shndx)
4746 {
4747 case SHN_COMMON:
4748 /* Common symbols less than the GP size are automatically
4749 treated as SHN_MIPS_SCOMMON symbols. */
4750 if (sym->st_size > elf_gp_size (abfd)
4751 || IRIX_COMPAT (abfd) == ict_irix6)
4752 break;
4753 /* Fall through. */
4754 case SHN_MIPS_SCOMMON:
4755 *secp = bfd_make_section_old_way (abfd, ".scommon");
4756 (*secp)->flags |= SEC_IS_COMMON;
4757 *valp = sym->st_size;
4758 break;
4759
4760 case SHN_MIPS_TEXT:
4761 /* This section is used in a shared object. */
4762 if (elf_tdata (abfd)->elf_text_section == NULL)
4763 {
4764 asymbol *elf_text_symbol;
4765 asection *elf_text_section;
4766 bfd_size_type amt = sizeof (asection);
4767
4768 elf_text_section = bfd_zalloc (abfd, amt);
4769 if (elf_text_section == NULL)
4770 return FALSE;
4771
4772 amt = sizeof (asymbol);
4773 elf_text_symbol = bfd_zalloc (abfd, amt);
4774 if (elf_text_symbol == NULL)
4775 return FALSE;
4776
4777 /* Initialize the section. */
4778
4779 elf_tdata (abfd)->elf_text_section = elf_text_section;
4780 elf_tdata (abfd)->elf_text_symbol = elf_text_symbol;
4781
4782 elf_text_section->symbol = elf_text_symbol;
4783 elf_text_section->symbol_ptr_ptr = &elf_tdata (abfd)->elf_text_symbol;
4784
4785 elf_text_section->name = ".text";
4786 elf_text_section->flags = SEC_NO_FLAGS;
4787 elf_text_section->output_section = NULL;
4788 elf_text_section->owner = abfd;
4789 elf_text_symbol->name = ".text";
4790 elf_text_symbol->flags = BSF_SECTION_SYM | BSF_DYNAMIC;
4791 elf_text_symbol->section = elf_text_section;
4792 }
4793 /* This code used to do *secp = bfd_und_section_ptr if
4794 info->shared. I don't know why, and that doesn't make sense,
4795 so I took it out. */
4796 *secp = elf_tdata (abfd)->elf_text_section;
4797 break;
4798
4799 case SHN_MIPS_ACOMMON:
4800 /* Fall through. XXX Can we treat this as allocated data? */
4801 case SHN_MIPS_DATA:
4802 /* This section is used in a shared object. */
4803 if (elf_tdata (abfd)->elf_data_section == NULL)
4804 {
4805 asymbol *elf_data_symbol;
4806 asection *elf_data_section;
4807 bfd_size_type amt = sizeof (asection);
4808
4809 elf_data_section = bfd_zalloc (abfd, amt);
4810 if (elf_data_section == NULL)
4811 return FALSE;
4812
4813 amt = sizeof (asymbol);
4814 elf_data_symbol = bfd_zalloc (abfd, amt);
4815 if (elf_data_symbol == NULL)
4816 return FALSE;
4817
4818 /* Initialize the section. */
4819
4820 elf_tdata (abfd)->elf_data_section = elf_data_section;
4821 elf_tdata (abfd)->elf_data_symbol = elf_data_symbol;
4822
4823 elf_data_section->symbol = elf_data_symbol;
4824 elf_data_section->symbol_ptr_ptr = &elf_tdata (abfd)->elf_data_symbol;
4825
4826 elf_data_section->name = ".data";
4827 elf_data_section->flags = SEC_NO_FLAGS;
4828 elf_data_section->output_section = NULL;
4829 elf_data_section->owner = abfd;
4830 elf_data_symbol->name = ".data";
4831 elf_data_symbol->flags = BSF_SECTION_SYM | BSF_DYNAMIC;
4832 elf_data_symbol->section = elf_data_section;
4833 }
4834 /* This code used to do *secp = bfd_und_section_ptr if
4835 info->shared. I don't know why, and that doesn't make sense,
4836 so I took it out. */
4837 *secp = elf_tdata (abfd)->elf_data_section;
4838 break;
4839
4840 case SHN_MIPS_SUNDEFINED:
4841 *secp = bfd_und_section_ptr;
4842 break;
4843 }
4844
4845 if (SGI_COMPAT (abfd)
4846 && ! info->shared
4847 && info->hash->creator == abfd->xvec
4848 && strcmp (*namep, "__rld_obj_head") == 0)
4849 {
4850 struct elf_link_hash_entry *h;
4851 struct bfd_link_hash_entry *bh;
4852
4853 /* Mark __rld_obj_head as dynamic. */
4854 bh = NULL;
4855 if (! (_bfd_generic_link_add_one_symbol
4856 (info, abfd, *namep, BSF_GLOBAL, *secp, *valp, NULL, FALSE,
4857 get_elf_backend_data (abfd)->collect, &bh)))
4858 return FALSE;
4859
4860 h = (struct elf_link_hash_entry *) bh;
4861 h->elf_link_hash_flags &= ~ELF_LINK_NON_ELF;
4862 h->elf_link_hash_flags |= ELF_LINK_HASH_DEF_REGULAR;
4863 h->type = STT_OBJECT;
4864
4865 if (! bfd_elf32_link_record_dynamic_symbol (info, h))
4866 return FALSE;
4867
4868 mips_elf_hash_table (info)->use_rld_obj_head = TRUE;
4869 }
4870
4871 /* If this is a mips16 text symbol, add 1 to the value to make it
4872 odd. This will cause something like .word SYM to come up with
4873 the right value when it is loaded into the PC. */
4874 if (sym->st_other == STO_MIPS16)
4875 ++*valp;
4876
4877 return TRUE;
4878 }
4879
4880 /* This hook function is called before the linker writes out a global
4881 symbol. We mark symbols as small common if appropriate. This is
4882 also where we undo the increment of the value for a mips16 symbol. */
4883
4884 bfd_boolean
4885 _bfd_mips_elf_link_output_symbol_hook
4886 (struct bfd_link_info *info ATTRIBUTE_UNUSED,
4887 const char *name ATTRIBUTE_UNUSED, Elf_Internal_Sym *sym,
4888 asection *input_sec, struct elf_link_hash_entry *h ATTRIBUTE_UNUSED)
4889 {
4890 /* If we see a common symbol, which implies a relocatable link, then
4891 if a symbol was small common in an input file, mark it as small
4892 common in the output file. */
4893 if (sym->st_shndx == SHN_COMMON
4894 && strcmp (input_sec->name, ".scommon") == 0)
4895 sym->st_shndx = SHN_MIPS_SCOMMON;
4896
4897 if (sym->st_other == STO_MIPS16
4898 && (sym->st_value & 1) != 0)
4899 --sym->st_value;
4900
4901 return TRUE;
4902 }
4903 \f
4904 /* Functions for the dynamic linker. */
4905
4906 /* Create dynamic sections when linking against a dynamic object. */
4907
4908 bfd_boolean
4909 _bfd_mips_elf_create_dynamic_sections (bfd *abfd, struct bfd_link_info *info)
4910 {
4911 struct elf_link_hash_entry *h;
4912 struct bfd_link_hash_entry *bh;
4913 flagword flags;
4914 register asection *s;
4915 const char * const *namep;
4916
4917 flags = (SEC_ALLOC | SEC_LOAD | SEC_HAS_CONTENTS | SEC_IN_MEMORY
4918 | SEC_LINKER_CREATED | SEC_READONLY);
4919
4920 /* Mips ABI requests the .dynamic section to be read only. */
4921 s = bfd_get_section_by_name (abfd, ".dynamic");
4922 if (s != NULL)
4923 {
4924 if (! bfd_set_section_flags (abfd, s, flags))
4925 return FALSE;
4926 }
4927
4928 /* We need to create .got section. */
4929 if (! mips_elf_create_got_section (abfd, info, FALSE))
4930 return FALSE;
4931
4932 if (! mips_elf_rel_dyn_section (elf_hash_table (info)->dynobj, TRUE))
4933 return FALSE;
4934
4935 /* Create .stub section. */
4936 if (bfd_get_section_by_name (abfd,
4937 MIPS_ELF_STUB_SECTION_NAME (abfd)) == NULL)
4938 {
4939 s = bfd_make_section (abfd, MIPS_ELF_STUB_SECTION_NAME (abfd));
4940 if (s == NULL
4941 || ! bfd_set_section_flags (abfd, s, flags | SEC_CODE)
4942 || ! bfd_set_section_alignment (abfd, s,
4943 MIPS_ELF_LOG_FILE_ALIGN (abfd)))
4944 return FALSE;
4945 }
4946
4947 if ((IRIX_COMPAT (abfd) == ict_irix5 || IRIX_COMPAT (abfd) == ict_none)
4948 && !info->shared
4949 && bfd_get_section_by_name (abfd, ".rld_map") == NULL)
4950 {
4951 s = bfd_make_section (abfd, ".rld_map");
4952 if (s == NULL
4953 || ! bfd_set_section_flags (abfd, s, flags &~ (flagword) SEC_READONLY)
4954 || ! bfd_set_section_alignment (abfd, s,
4955 MIPS_ELF_LOG_FILE_ALIGN (abfd)))
4956 return FALSE;
4957 }
4958
4959 /* On IRIX5, we adjust add some additional symbols and change the
4960 alignments of several sections. There is no ABI documentation
4961 indicating that this is necessary on IRIX6, nor any evidence that
4962 the linker takes such action. */
4963 if (IRIX_COMPAT (abfd) == ict_irix5)
4964 {
4965 for (namep = mips_elf_dynsym_rtproc_names; *namep != NULL; namep++)
4966 {
4967 bh = NULL;
4968 if (! (_bfd_generic_link_add_one_symbol
4969 (info, abfd, *namep, BSF_GLOBAL, bfd_und_section_ptr, 0,
4970 NULL, FALSE, get_elf_backend_data (abfd)->collect, &bh)))
4971 return FALSE;
4972
4973 h = (struct elf_link_hash_entry *) bh;
4974 h->elf_link_hash_flags &= ~ELF_LINK_NON_ELF;
4975 h->elf_link_hash_flags |= ELF_LINK_HASH_DEF_REGULAR;
4976 h->type = STT_SECTION;
4977
4978 if (! bfd_elf32_link_record_dynamic_symbol (info, h))
4979 return FALSE;
4980 }
4981
4982 /* We need to create a .compact_rel section. */
4983 if (SGI_COMPAT (abfd))
4984 {
4985 if (!mips_elf_create_compact_rel_section (abfd, info))
4986 return FALSE;
4987 }
4988
4989 /* Change alignments of some sections. */
4990 s = bfd_get_section_by_name (abfd, ".hash");
4991 if (s != NULL)
4992 bfd_set_section_alignment (abfd, s, MIPS_ELF_LOG_FILE_ALIGN (abfd));
4993 s = bfd_get_section_by_name (abfd, ".dynsym");
4994 if (s != NULL)
4995 bfd_set_section_alignment (abfd, s, MIPS_ELF_LOG_FILE_ALIGN (abfd));
4996 s = bfd_get_section_by_name (abfd, ".dynstr");
4997 if (s != NULL)
4998 bfd_set_section_alignment (abfd, s, MIPS_ELF_LOG_FILE_ALIGN (abfd));
4999 s = bfd_get_section_by_name (abfd, ".reginfo");
5000 if (s != NULL)
5001 bfd_set_section_alignment (abfd, s, MIPS_ELF_LOG_FILE_ALIGN (abfd));
5002 s = bfd_get_section_by_name (abfd, ".dynamic");
5003 if (s != NULL)
5004 bfd_set_section_alignment (abfd, s, MIPS_ELF_LOG_FILE_ALIGN (abfd));
5005 }
5006
5007 if (!info->shared)
5008 {
5009 const char *name;
5010
5011 name = SGI_COMPAT (abfd) ? "_DYNAMIC_LINK" : "_DYNAMIC_LINKING";
5012 bh = NULL;
5013 if (!(_bfd_generic_link_add_one_symbol
5014 (info, abfd, name, BSF_GLOBAL, bfd_abs_section_ptr, 0,
5015 NULL, FALSE, get_elf_backend_data (abfd)->collect, &bh)))
5016 return FALSE;
5017
5018 h = (struct elf_link_hash_entry *) bh;
5019 h->elf_link_hash_flags &= ~ELF_LINK_NON_ELF;
5020 h->elf_link_hash_flags |= ELF_LINK_HASH_DEF_REGULAR;
5021 h->type = STT_SECTION;
5022
5023 if (! bfd_elf32_link_record_dynamic_symbol (info, h))
5024 return FALSE;
5025
5026 if (! mips_elf_hash_table (info)->use_rld_obj_head)
5027 {
5028 /* __rld_map is a four byte word located in the .data section
5029 and is filled in by the rtld to contain a pointer to
5030 the _r_debug structure. Its symbol value will be set in
5031 _bfd_mips_elf_finish_dynamic_symbol. */
5032 s = bfd_get_section_by_name (abfd, ".rld_map");
5033 BFD_ASSERT (s != NULL);
5034
5035 name = SGI_COMPAT (abfd) ? "__rld_map" : "__RLD_MAP";
5036 bh = NULL;
5037 if (!(_bfd_generic_link_add_one_symbol
5038 (info, abfd, name, BSF_GLOBAL, s, 0, NULL, FALSE,
5039 get_elf_backend_data (abfd)->collect, &bh)))
5040 return FALSE;
5041
5042 h = (struct elf_link_hash_entry *) bh;
5043 h->elf_link_hash_flags &= ~ELF_LINK_NON_ELF;
5044 h->elf_link_hash_flags |= ELF_LINK_HASH_DEF_REGULAR;
5045 h->type = STT_OBJECT;
5046
5047 if (! bfd_elf32_link_record_dynamic_symbol (info, h))
5048 return FALSE;
5049 }
5050 }
5051
5052 return TRUE;
5053 }
5054 \f
5055 /* Look through the relocs for a section during the first phase, and
5056 allocate space in the global offset table. */
5057
5058 bfd_boolean
5059 _bfd_mips_elf_check_relocs (bfd *abfd, struct bfd_link_info *info,
5060 asection *sec, const Elf_Internal_Rela *relocs)
5061 {
5062 const char *name;
5063 bfd *dynobj;
5064 Elf_Internal_Shdr *symtab_hdr;
5065 struct elf_link_hash_entry **sym_hashes;
5066 struct mips_got_info *g;
5067 size_t extsymoff;
5068 const Elf_Internal_Rela *rel;
5069 const Elf_Internal_Rela *rel_end;
5070 asection *sgot;
5071 asection *sreloc;
5072 const struct elf_backend_data *bed;
5073
5074 if (info->relocatable)
5075 return TRUE;
5076
5077 dynobj = elf_hash_table (info)->dynobj;
5078 symtab_hdr = &elf_tdata (abfd)->symtab_hdr;
5079 sym_hashes = elf_sym_hashes (abfd);
5080 extsymoff = (elf_bad_symtab (abfd)) ? 0 : symtab_hdr->sh_info;
5081
5082 /* Check for the mips16 stub sections. */
5083
5084 name = bfd_get_section_name (abfd, sec);
5085 if (strncmp (name, FN_STUB, sizeof FN_STUB - 1) == 0)
5086 {
5087 unsigned long r_symndx;
5088
5089 /* Look at the relocation information to figure out which symbol
5090 this is for. */
5091
5092 r_symndx = ELF_R_SYM (abfd, relocs->r_info);
5093
5094 if (r_symndx < extsymoff
5095 || sym_hashes[r_symndx - extsymoff] == NULL)
5096 {
5097 asection *o;
5098
5099 /* This stub is for a local symbol. This stub will only be
5100 needed if there is some relocation in this BFD, other
5101 than a 16 bit function call, which refers to this symbol. */
5102 for (o = abfd->sections; o != NULL; o = o->next)
5103 {
5104 Elf_Internal_Rela *sec_relocs;
5105 const Elf_Internal_Rela *r, *rend;
5106
5107 /* We can ignore stub sections when looking for relocs. */
5108 if ((o->flags & SEC_RELOC) == 0
5109 || o->reloc_count == 0
5110 || strncmp (bfd_get_section_name (abfd, o), FN_STUB,
5111 sizeof FN_STUB - 1) == 0
5112 || strncmp (bfd_get_section_name (abfd, o), CALL_STUB,
5113 sizeof CALL_STUB - 1) == 0
5114 || strncmp (bfd_get_section_name (abfd, o), CALL_FP_STUB,
5115 sizeof CALL_FP_STUB - 1) == 0)
5116 continue;
5117
5118 sec_relocs
5119 = _bfd_elf_link_read_relocs (abfd, o, NULL, NULL,
5120 info->keep_memory);
5121 if (sec_relocs == NULL)
5122 return FALSE;
5123
5124 rend = sec_relocs + o->reloc_count;
5125 for (r = sec_relocs; r < rend; r++)
5126 if (ELF_R_SYM (abfd, r->r_info) == r_symndx
5127 && ELF_R_TYPE (abfd, r->r_info) != R_MIPS16_26)
5128 break;
5129
5130 if (elf_section_data (o)->relocs != sec_relocs)
5131 free (sec_relocs);
5132
5133 if (r < rend)
5134 break;
5135 }
5136
5137 if (o == NULL)
5138 {
5139 /* There is no non-call reloc for this stub, so we do
5140 not need it. Since this function is called before
5141 the linker maps input sections to output sections, we
5142 can easily discard it by setting the SEC_EXCLUDE
5143 flag. */
5144 sec->flags |= SEC_EXCLUDE;
5145 return TRUE;
5146 }
5147
5148 /* Record this stub in an array of local symbol stubs for
5149 this BFD. */
5150 if (elf_tdata (abfd)->local_stubs == NULL)
5151 {
5152 unsigned long symcount;
5153 asection **n;
5154 bfd_size_type amt;
5155
5156 if (elf_bad_symtab (abfd))
5157 symcount = NUM_SHDR_ENTRIES (symtab_hdr);
5158 else
5159 symcount = symtab_hdr->sh_info;
5160 amt = symcount * sizeof (asection *);
5161 n = bfd_zalloc (abfd, amt);
5162 if (n == NULL)
5163 return FALSE;
5164 elf_tdata (abfd)->local_stubs = n;
5165 }
5166
5167 elf_tdata (abfd)->local_stubs[r_symndx] = sec;
5168
5169 /* We don't need to set mips16_stubs_seen in this case.
5170 That flag is used to see whether we need to look through
5171 the global symbol table for stubs. We don't need to set
5172 it here, because we just have a local stub. */
5173 }
5174 else
5175 {
5176 struct mips_elf_link_hash_entry *h;
5177
5178 h = ((struct mips_elf_link_hash_entry *)
5179 sym_hashes[r_symndx - extsymoff]);
5180
5181 /* H is the symbol this stub is for. */
5182
5183 h->fn_stub = sec;
5184 mips_elf_hash_table (info)->mips16_stubs_seen = TRUE;
5185 }
5186 }
5187 else if (strncmp (name, CALL_STUB, sizeof CALL_STUB - 1) == 0
5188 || strncmp (name, CALL_FP_STUB, sizeof CALL_FP_STUB - 1) == 0)
5189 {
5190 unsigned long r_symndx;
5191 struct mips_elf_link_hash_entry *h;
5192 asection **loc;
5193
5194 /* Look at the relocation information to figure out which symbol
5195 this is for. */
5196
5197 r_symndx = ELF_R_SYM (abfd, relocs->r_info);
5198
5199 if (r_symndx < extsymoff
5200 || sym_hashes[r_symndx - extsymoff] == NULL)
5201 {
5202 /* This stub was actually built for a static symbol defined
5203 in the same file. We assume that all static symbols in
5204 mips16 code are themselves mips16, so we can simply
5205 discard this stub. Since this function is called before
5206 the linker maps input sections to output sections, we can
5207 easily discard it by setting the SEC_EXCLUDE flag. */
5208 sec->flags |= SEC_EXCLUDE;
5209 return TRUE;
5210 }
5211
5212 h = ((struct mips_elf_link_hash_entry *)
5213 sym_hashes[r_symndx - extsymoff]);
5214
5215 /* H is the symbol this stub is for. */
5216
5217 if (strncmp (name, CALL_FP_STUB, sizeof CALL_FP_STUB - 1) == 0)
5218 loc = &h->call_fp_stub;
5219 else
5220 loc = &h->call_stub;
5221
5222 /* If we already have an appropriate stub for this function, we
5223 don't need another one, so we can discard this one. Since
5224 this function is called before the linker maps input sections
5225 to output sections, we can easily discard it by setting the
5226 SEC_EXCLUDE flag. We can also discard this section if we
5227 happen to already know that this is a mips16 function; it is
5228 not necessary to check this here, as it is checked later, but
5229 it is slightly faster to check now. */
5230 if (*loc != NULL || h->root.other == STO_MIPS16)
5231 {
5232 sec->flags |= SEC_EXCLUDE;
5233 return TRUE;
5234 }
5235
5236 *loc = sec;
5237 mips_elf_hash_table (info)->mips16_stubs_seen = TRUE;
5238 }
5239
5240 if (dynobj == NULL)
5241 {
5242 sgot = NULL;
5243 g = NULL;
5244 }
5245 else
5246 {
5247 sgot = mips_elf_got_section (dynobj, FALSE);
5248 if (sgot == NULL)
5249 g = NULL;
5250 else
5251 {
5252 BFD_ASSERT (mips_elf_section_data (sgot) != NULL);
5253 g = mips_elf_section_data (sgot)->u.got_info;
5254 BFD_ASSERT (g != NULL);
5255 }
5256 }
5257
5258 sreloc = NULL;
5259 bed = get_elf_backend_data (abfd);
5260 rel_end = relocs + sec->reloc_count * bed->s->int_rels_per_ext_rel;
5261 for (rel = relocs; rel < rel_end; ++rel)
5262 {
5263 unsigned long r_symndx;
5264 unsigned int r_type;
5265 struct elf_link_hash_entry *h;
5266
5267 r_symndx = ELF_R_SYM (abfd, rel->r_info);
5268 r_type = ELF_R_TYPE (abfd, rel->r_info);
5269
5270 if (r_symndx < extsymoff)
5271 h = NULL;
5272 else if (r_symndx >= extsymoff + NUM_SHDR_ENTRIES (symtab_hdr))
5273 {
5274 (*_bfd_error_handler)
5275 (_("%s: Malformed reloc detected for section %s"),
5276 bfd_archive_filename (abfd), name);
5277 bfd_set_error (bfd_error_bad_value);
5278 return FALSE;
5279 }
5280 else
5281 {
5282 h = sym_hashes[r_symndx - extsymoff];
5283
5284 /* This may be an indirect symbol created because of a version. */
5285 if (h != NULL)
5286 {
5287 while (h->root.type == bfd_link_hash_indirect)
5288 h = (struct elf_link_hash_entry *) h->root.u.i.link;
5289 }
5290 }
5291
5292 /* Some relocs require a global offset table. */
5293 if (dynobj == NULL || sgot == NULL)
5294 {
5295 switch (r_type)
5296 {
5297 case R_MIPS_GOT16:
5298 case R_MIPS_CALL16:
5299 case R_MIPS_CALL_HI16:
5300 case R_MIPS_CALL_LO16:
5301 case R_MIPS_GOT_HI16:
5302 case R_MIPS_GOT_LO16:
5303 case R_MIPS_GOT_PAGE:
5304 case R_MIPS_GOT_OFST:
5305 case R_MIPS_GOT_DISP:
5306 if (dynobj == NULL)
5307 elf_hash_table (info)->dynobj = dynobj = abfd;
5308 if (! mips_elf_create_got_section (dynobj, info, FALSE))
5309 return FALSE;
5310 g = mips_elf_got_info (dynobj, &sgot);
5311 break;
5312
5313 case R_MIPS_32:
5314 case R_MIPS_REL32:
5315 case R_MIPS_64:
5316 if (dynobj == NULL
5317 && (info->shared || h != NULL)
5318 && (sec->flags & SEC_ALLOC) != 0)
5319 elf_hash_table (info)->dynobj = dynobj = abfd;
5320 break;
5321
5322 default:
5323 break;
5324 }
5325 }
5326
5327 if (!h && (r_type == R_MIPS_CALL_LO16
5328 || r_type == R_MIPS_GOT_LO16
5329 || r_type == R_MIPS_GOT_DISP))
5330 {
5331 /* We may need a local GOT entry for this relocation. We
5332 don't count R_MIPS_GOT_PAGE because we can estimate the
5333 maximum number of pages needed by looking at the size of
5334 the segment. Similar comments apply to R_MIPS_GOT16 and
5335 R_MIPS_CALL16. We don't count R_MIPS_GOT_HI16, or
5336 R_MIPS_CALL_HI16 because these are always followed by an
5337 R_MIPS_GOT_LO16 or R_MIPS_CALL_LO16. */
5338 if (! mips_elf_record_local_got_symbol (abfd, r_symndx,
5339 rel->r_addend, g))
5340 return FALSE;
5341 }
5342
5343 switch (r_type)
5344 {
5345 case R_MIPS_CALL16:
5346 if (h == NULL)
5347 {
5348 (*_bfd_error_handler)
5349 (_("%s: CALL16 reloc at 0x%lx not against global symbol"),
5350 bfd_archive_filename (abfd), (unsigned long) rel->r_offset);
5351 bfd_set_error (bfd_error_bad_value);
5352 return FALSE;
5353 }
5354 /* Fall through. */
5355
5356 case R_MIPS_CALL_HI16:
5357 case R_MIPS_CALL_LO16:
5358 if (h != NULL)
5359 {
5360 /* This symbol requires a global offset table entry. */
5361 if (! mips_elf_record_global_got_symbol (h, abfd, info, g))
5362 return FALSE;
5363
5364 /* We need a stub, not a plt entry for the undefined
5365 function. But we record it as if it needs plt. See
5366 elf_adjust_dynamic_symbol in elflink.h. */
5367 h->elf_link_hash_flags |= ELF_LINK_HASH_NEEDS_PLT;
5368 h->type = STT_FUNC;
5369 }
5370 break;
5371
5372 case R_MIPS_GOT_PAGE:
5373 /* If this is a global, overridable symbol, GOT_PAGE will
5374 decay to GOT_DISP, so we'll need a GOT entry for it. */
5375 if (h == NULL)
5376 break;
5377 else
5378 {
5379 struct mips_elf_link_hash_entry *hmips =
5380 (struct mips_elf_link_hash_entry *) h;
5381
5382 while (hmips->root.root.type == bfd_link_hash_indirect
5383 || hmips->root.root.type == bfd_link_hash_warning)
5384 hmips = (struct mips_elf_link_hash_entry *)
5385 hmips->root.root.u.i.link;
5386
5387 if ((hmips->root.root.type == bfd_link_hash_defined
5388 || hmips->root.root.type == bfd_link_hash_defweak)
5389 && hmips->root.root.u.def.section
5390 && ! (info->shared && ! info->symbolic
5391 && ! (hmips->root.elf_link_hash_flags
5392 & ELF_LINK_FORCED_LOCAL))
5393 /* If we've encountered any other relocation
5394 referencing the symbol, we'll have marked it as
5395 dynamic, and, even though we might be able to get
5396 rid of the GOT entry should we know for sure all
5397 previous relocations were GOT_PAGE ones, at this
5398 point we can't tell, so just keep using the
5399 symbol as dynamic. This is very important in the
5400 multi-got case, since we don't decide whether to
5401 decay GOT_PAGE to GOT_DISP on a per-GOT basis: if
5402 the symbol is dynamic, we'll need a GOT entry for
5403 every GOT in which the symbol is referenced with
5404 a GOT_PAGE relocation. */
5405 && hmips->root.dynindx == -1)
5406 break;
5407 }
5408 /* Fall through. */
5409
5410 case R_MIPS_GOT16:
5411 case R_MIPS_GOT_HI16:
5412 case R_MIPS_GOT_LO16:
5413 case R_MIPS_GOT_DISP:
5414 /* This symbol requires a global offset table entry. */
5415 if (h && ! mips_elf_record_global_got_symbol (h, abfd, info, g))
5416 return FALSE;
5417 break;
5418
5419 case R_MIPS_32:
5420 case R_MIPS_REL32:
5421 case R_MIPS_64:
5422 if ((info->shared || h != NULL)
5423 && (sec->flags & SEC_ALLOC) != 0)
5424 {
5425 if (sreloc == NULL)
5426 {
5427 sreloc = mips_elf_rel_dyn_section (dynobj, TRUE);
5428 if (sreloc == NULL)
5429 return FALSE;
5430 }
5431 #define MIPS_READONLY_SECTION (SEC_ALLOC | SEC_LOAD | SEC_READONLY)
5432 if (info->shared)
5433 {
5434 /* When creating a shared object, we must copy these
5435 reloc types into the output file as R_MIPS_REL32
5436 relocs. We make room for this reloc in the
5437 .rel.dyn reloc section. */
5438 mips_elf_allocate_dynamic_relocations (dynobj, 1);
5439 if ((sec->flags & MIPS_READONLY_SECTION)
5440 == MIPS_READONLY_SECTION)
5441 /* We tell the dynamic linker that there are
5442 relocations against the text segment. */
5443 info->flags |= DF_TEXTREL;
5444 }
5445 else
5446 {
5447 struct mips_elf_link_hash_entry *hmips;
5448
5449 /* We only need to copy this reloc if the symbol is
5450 defined in a dynamic object. */
5451 hmips = (struct mips_elf_link_hash_entry *) h;
5452 ++hmips->possibly_dynamic_relocs;
5453 if ((sec->flags & MIPS_READONLY_SECTION)
5454 == MIPS_READONLY_SECTION)
5455 /* We need it to tell the dynamic linker if there
5456 are relocations against the text segment. */
5457 hmips->readonly_reloc = TRUE;
5458 }
5459
5460 /* Even though we don't directly need a GOT entry for
5461 this symbol, a symbol must have a dynamic symbol
5462 table index greater that DT_MIPS_GOTSYM if there are
5463 dynamic relocations against it. */
5464 if (h != NULL)
5465 {
5466 if (dynobj == NULL)
5467 elf_hash_table (info)->dynobj = dynobj = abfd;
5468 if (! mips_elf_create_got_section (dynobj, info, TRUE))
5469 return FALSE;
5470 g = mips_elf_got_info (dynobj, &sgot);
5471 if (! mips_elf_record_global_got_symbol (h, abfd, info, g))
5472 return FALSE;
5473 }
5474 }
5475
5476 if (SGI_COMPAT (abfd))
5477 mips_elf_hash_table (info)->compact_rel_size +=
5478 sizeof (Elf32_External_crinfo);
5479 break;
5480
5481 case R_MIPS_26:
5482 case R_MIPS_GPREL16:
5483 case R_MIPS_LITERAL:
5484 case R_MIPS_GPREL32:
5485 if (SGI_COMPAT (abfd))
5486 mips_elf_hash_table (info)->compact_rel_size +=
5487 sizeof (Elf32_External_crinfo);
5488 break;
5489
5490 /* This relocation describes the C++ object vtable hierarchy.
5491 Reconstruct it for later use during GC. */
5492 case R_MIPS_GNU_VTINHERIT:
5493 if (!_bfd_elf32_gc_record_vtinherit (abfd, sec, h, rel->r_offset))
5494 return FALSE;
5495 break;
5496
5497 /* This relocation describes which C++ vtable entries are actually
5498 used. Record for later use during GC. */
5499 case R_MIPS_GNU_VTENTRY:
5500 if (!_bfd_elf32_gc_record_vtentry (abfd, sec, h, rel->r_offset))
5501 return FALSE;
5502 break;
5503
5504 default:
5505 break;
5506 }
5507
5508 /* We must not create a stub for a symbol that has relocations
5509 related to taking the function's address. */
5510 switch (r_type)
5511 {
5512 default:
5513 if (h != NULL)
5514 {
5515 struct mips_elf_link_hash_entry *mh;
5516
5517 mh = (struct mips_elf_link_hash_entry *) h;
5518 mh->no_fn_stub = TRUE;
5519 }
5520 break;
5521 case R_MIPS_CALL16:
5522 case R_MIPS_CALL_HI16:
5523 case R_MIPS_CALL_LO16:
5524 case R_MIPS_JALR:
5525 break;
5526 }
5527
5528 /* If this reloc is not a 16 bit call, and it has a global
5529 symbol, then we will need the fn_stub if there is one.
5530 References from a stub section do not count. */
5531 if (h != NULL
5532 && r_type != R_MIPS16_26
5533 && strncmp (bfd_get_section_name (abfd, sec), FN_STUB,
5534 sizeof FN_STUB - 1) != 0
5535 && strncmp (bfd_get_section_name (abfd, sec), CALL_STUB,
5536 sizeof CALL_STUB - 1) != 0
5537 && strncmp (bfd_get_section_name (abfd, sec), CALL_FP_STUB,
5538 sizeof CALL_FP_STUB - 1) != 0)
5539 {
5540 struct mips_elf_link_hash_entry *mh;
5541
5542 mh = (struct mips_elf_link_hash_entry *) h;
5543 mh->need_fn_stub = TRUE;
5544 }
5545 }
5546
5547 return TRUE;
5548 }
5549 \f
5550 bfd_boolean
5551 _bfd_mips_relax_section (bfd *abfd, asection *sec,
5552 struct bfd_link_info *link_info,
5553 bfd_boolean *again)
5554 {
5555 Elf_Internal_Rela *internal_relocs;
5556 Elf_Internal_Rela *irel, *irelend;
5557 Elf_Internal_Shdr *symtab_hdr;
5558 bfd_byte *contents = NULL;
5559 bfd_byte *free_contents = NULL;
5560 size_t extsymoff;
5561 bfd_boolean changed_contents = FALSE;
5562 bfd_vma sec_start = sec->output_section->vma + sec->output_offset;
5563 Elf_Internal_Sym *isymbuf = NULL;
5564
5565 /* We are not currently changing any sizes, so only one pass. */
5566 *again = FALSE;
5567
5568 if (link_info->relocatable)
5569 return TRUE;
5570
5571 internal_relocs = _bfd_elf_link_read_relocs (abfd, sec, NULL, NULL,
5572 link_info->keep_memory);
5573 if (internal_relocs == NULL)
5574 return TRUE;
5575
5576 irelend = internal_relocs + sec->reloc_count
5577 * get_elf_backend_data (abfd)->s->int_rels_per_ext_rel;
5578 symtab_hdr = &elf_tdata (abfd)->symtab_hdr;
5579 extsymoff = (elf_bad_symtab (abfd)) ? 0 : symtab_hdr->sh_info;
5580
5581 for (irel = internal_relocs; irel < irelend; irel++)
5582 {
5583 bfd_vma symval;
5584 bfd_signed_vma sym_offset;
5585 unsigned int r_type;
5586 unsigned long r_symndx;
5587 asection *sym_sec;
5588 unsigned long instruction;
5589
5590 /* Turn jalr into bgezal, and jr into beq, if they're marked
5591 with a JALR relocation, that indicate where they jump to.
5592 This saves some pipeline bubbles. */
5593 r_type = ELF_R_TYPE (abfd, irel->r_info);
5594 if (r_type != R_MIPS_JALR)
5595 continue;
5596
5597 r_symndx = ELF_R_SYM (abfd, irel->r_info);
5598 /* Compute the address of the jump target. */
5599 if (r_symndx >= extsymoff)
5600 {
5601 struct mips_elf_link_hash_entry *h
5602 = ((struct mips_elf_link_hash_entry *)
5603 elf_sym_hashes (abfd) [r_symndx - extsymoff]);
5604
5605 while (h->root.root.type == bfd_link_hash_indirect
5606 || h->root.root.type == bfd_link_hash_warning)
5607 h = (struct mips_elf_link_hash_entry *) h->root.root.u.i.link;
5608
5609 /* If a symbol is undefined, or if it may be overridden,
5610 skip it. */
5611 if (! ((h->root.root.type == bfd_link_hash_defined
5612 || h->root.root.type == bfd_link_hash_defweak)
5613 && h->root.root.u.def.section)
5614 || (link_info->shared && ! link_info->symbolic
5615 && ! (h->root.elf_link_hash_flags & ELF_LINK_FORCED_LOCAL)))
5616 continue;
5617
5618 sym_sec = h->root.root.u.def.section;
5619 if (sym_sec->output_section)
5620 symval = (h->root.root.u.def.value
5621 + sym_sec->output_section->vma
5622 + sym_sec->output_offset);
5623 else
5624 symval = h->root.root.u.def.value;
5625 }
5626 else
5627 {
5628 Elf_Internal_Sym *isym;
5629
5630 /* Read this BFD's symbols if we haven't done so already. */
5631 if (isymbuf == NULL && symtab_hdr->sh_info != 0)
5632 {
5633 isymbuf = (Elf_Internal_Sym *) symtab_hdr->contents;
5634 if (isymbuf == NULL)
5635 isymbuf = bfd_elf_get_elf_syms (abfd, symtab_hdr,
5636 symtab_hdr->sh_info, 0,
5637 NULL, NULL, NULL);
5638 if (isymbuf == NULL)
5639 goto relax_return;
5640 }
5641
5642 isym = isymbuf + r_symndx;
5643 if (isym->st_shndx == SHN_UNDEF)
5644 continue;
5645 else if (isym->st_shndx == SHN_ABS)
5646 sym_sec = bfd_abs_section_ptr;
5647 else if (isym->st_shndx == SHN_COMMON)
5648 sym_sec = bfd_com_section_ptr;
5649 else
5650 sym_sec
5651 = bfd_section_from_elf_index (abfd, isym->st_shndx);
5652 symval = isym->st_value
5653 + sym_sec->output_section->vma
5654 + sym_sec->output_offset;
5655 }
5656
5657 /* Compute branch offset, from delay slot of the jump to the
5658 branch target. */
5659 sym_offset = (symval + irel->r_addend)
5660 - (sec_start + irel->r_offset + 4);
5661
5662 /* Branch offset must be properly aligned. */
5663 if ((sym_offset & 3) != 0)
5664 continue;
5665
5666 sym_offset >>= 2;
5667
5668 /* Check that it's in range. */
5669 if (sym_offset < -0x8000 || sym_offset >= 0x8000)
5670 continue;
5671
5672 /* Get the section contents if we haven't done so already. */
5673 if (contents == NULL)
5674 {
5675 /* Get cached copy if it exists. */
5676 if (elf_section_data (sec)->this_hdr.contents != NULL)
5677 contents = elf_section_data (sec)->this_hdr.contents;
5678 else
5679 {
5680 contents = bfd_malloc (sec->_raw_size);
5681 if (contents == NULL)
5682 goto relax_return;
5683
5684 free_contents = contents;
5685 if (! bfd_get_section_contents (abfd, sec, contents,
5686 0, sec->_raw_size))
5687 goto relax_return;
5688 }
5689 }
5690
5691 instruction = bfd_get_32 (abfd, contents + irel->r_offset);
5692
5693 /* If it was jalr <reg>, turn it into bgezal $zero, <target>. */
5694 if ((instruction & 0xfc1fffff) == 0x0000f809)
5695 instruction = 0x04110000;
5696 /* If it was jr <reg>, turn it into b <target>. */
5697 else if ((instruction & 0xfc1fffff) == 0x00000008)
5698 instruction = 0x10000000;
5699 else
5700 continue;
5701
5702 instruction |= (sym_offset & 0xffff);
5703 bfd_put_32 (abfd, instruction, contents + irel->r_offset);
5704 changed_contents = TRUE;
5705 }
5706
5707 if (contents != NULL
5708 && elf_section_data (sec)->this_hdr.contents != contents)
5709 {
5710 if (!changed_contents && !link_info->keep_memory)
5711 free (contents);
5712 else
5713 {
5714 /* Cache the section contents for elf_link_input_bfd. */
5715 elf_section_data (sec)->this_hdr.contents = contents;
5716 }
5717 }
5718 return TRUE;
5719
5720 relax_return:
5721 if (free_contents != NULL)
5722 free (free_contents);
5723 return FALSE;
5724 }
5725 \f
5726 /* Adjust a symbol defined by a dynamic object and referenced by a
5727 regular object. The current definition is in some section of the
5728 dynamic object, but we're not including those sections. We have to
5729 change the definition to something the rest of the link can
5730 understand. */
5731
5732 bfd_boolean
5733 _bfd_mips_elf_adjust_dynamic_symbol (struct bfd_link_info *info,
5734 struct elf_link_hash_entry *h)
5735 {
5736 bfd *dynobj;
5737 struct mips_elf_link_hash_entry *hmips;
5738 asection *s;
5739
5740 dynobj = elf_hash_table (info)->dynobj;
5741
5742 /* Make sure we know what is going on here. */
5743 BFD_ASSERT (dynobj != NULL
5744 && ((h->elf_link_hash_flags & ELF_LINK_HASH_NEEDS_PLT)
5745 || h->weakdef != NULL
5746 || ((h->elf_link_hash_flags
5747 & ELF_LINK_HASH_DEF_DYNAMIC) != 0
5748 && (h->elf_link_hash_flags
5749 & ELF_LINK_HASH_REF_REGULAR) != 0
5750 && (h->elf_link_hash_flags
5751 & ELF_LINK_HASH_DEF_REGULAR) == 0)));
5752
5753 /* If this symbol is defined in a dynamic object, we need to copy
5754 any R_MIPS_32 or R_MIPS_REL32 relocs against it into the output
5755 file. */
5756 hmips = (struct mips_elf_link_hash_entry *) h;
5757 if (! info->relocatable
5758 && hmips->possibly_dynamic_relocs != 0
5759 && (h->root.type == bfd_link_hash_defweak
5760 || (h->elf_link_hash_flags
5761 & ELF_LINK_HASH_DEF_REGULAR) == 0))
5762 {
5763 mips_elf_allocate_dynamic_relocations (dynobj,
5764 hmips->possibly_dynamic_relocs);
5765 if (hmips->readonly_reloc)
5766 /* We tell the dynamic linker that there are relocations
5767 against the text segment. */
5768 info->flags |= DF_TEXTREL;
5769 }
5770
5771 /* For a function, create a stub, if allowed. */
5772 if (! hmips->no_fn_stub
5773 && (h->elf_link_hash_flags & ELF_LINK_HASH_NEEDS_PLT) != 0)
5774 {
5775 if (! elf_hash_table (info)->dynamic_sections_created)
5776 return TRUE;
5777
5778 /* If this symbol is not defined in a regular file, then set
5779 the symbol to the stub location. This is required to make
5780 function pointers compare as equal between the normal
5781 executable and the shared library. */
5782 if ((h->elf_link_hash_flags & ELF_LINK_HASH_DEF_REGULAR) == 0)
5783 {
5784 /* We need .stub section. */
5785 s = bfd_get_section_by_name (dynobj,
5786 MIPS_ELF_STUB_SECTION_NAME (dynobj));
5787 BFD_ASSERT (s != NULL);
5788
5789 h->root.u.def.section = s;
5790 h->root.u.def.value = s->_raw_size;
5791
5792 /* XXX Write this stub address somewhere. */
5793 h->plt.offset = s->_raw_size;
5794
5795 /* Make room for this stub code. */
5796 s->_raw_size += MIPS_FUNCTION_STUB_SIZE;
5797
5798 /* The last half word of the stub will be filled with the index
5799 of this symbol in .dynsym section. */
5800 return TRUE;
5801 }
5802 }
5803 else if ((h->type == STT_FUNC)
5804 && (h->elf_link_hash_flags & ELF_LINK_HASH_NEEDS_PLT) == 0)
5805 {
5806 /* This will set the entry for this symbol in the GOT to 0, and
5807 the dynamic linker will take care of this. */
5808 h->root.u.def.value = 0;
5809 return TRUE;
5810 }
5811
5812 /* If this is a weak symbol, and there is a real definition, the
5813 processor independent code will have arranged for us to see the
5814 real definition first, and we can just use the same value. */
5815 if (h->weakdef != NULL)
5816 {
5817 BFD_ASSERT (h->weakdef->root.type == bfd_link_hash_defined
5818 || h->weakdef->root.type == bfd_link_hash_defweak);
5819 h->root.u.def.section = h->weakdef->root.u.def.section;
5820 h->root.u.def.value = h->weakdef->root.u.def.value;
5821 return TRUE;
5822 }
5823
5824 /* This is a reference to a symbol defined by a dynamic object which
5825 is not a function. */
5826
5827 return TRUE;
5828 }
5829 \f
5830 /* This function is called after all the input files have been read,
5831 and the input sections have been assigned to output sections. We
5832 check for any mips16 stub sections that we can discard. */
5833
5834 bfd_boolean
5835 _bfd_mips_elf_always_size_sections (bfd *output_bfd,
5836 struct bfd_link_info *info)
5837 {
5838 asection *ri;
5839
5840 bfd *dynobj;
5841 asection *s;
5842 struct mips_got_info *g;
5843 int i;
5844 bfd_size_type loadable_size = 0;
5845 bfd_size_type local_gotno;
5846 bfd *sub;
5847
5848 /* The .reginfo section has a fixed size. */
5849 ri = bfd_get_section_by_name (output_bfd, ".reginfo");
5850 if (ri != NULL)
5851 bfd_set_section_size (output_bfd, ri, sizeof (Elf32_External_RegInfo));
5852
5853 if (! (info->relocatable
5854 || ! mips_elf_hash_table (info)->mips16_stubs_seen))
5855 mips_elf_link_hash_traverse (mips_elf_hash_table (info),
5856 mips_elf_check_mips16_stubs, NULL);
5857
5858 dynobj = elf_hash_table (info)->dynobj;
5859 if (dynobj == NULL)
5860 /* Relocatable links don't have it. */
5861 return TRUE;
5862
5863 g = mips_elf_got_info (dynobj, &s);
5864 if (s == NULL)
5865 return TRUE;
5866
5867 /* Calculate the total loadable size of the output. That
5868 will give us the maximum number of GOT_PAGE entries
5869 required. */
5870 for (sub = info->input_bfds; sub; sub = sub->link_next)
5871 {
5872 asection *subsection;
5873
5874 for (subsection = sub->sections;
5875 subsection;
5876 subsection = subsection->next)
5877 {
5878 if ((subsection->flags & SEC_ALLOC) == 0)
5879 continue;
5880 loadable_size += ((subsection->_raw_size + 0xf)
5881 &~ (bfd_size_type) 0xf);
5882 }
5883 }
5884
5885 /* There has to be a global GOT entry for every symbol with
5886 a dynamic symbol table index of DT_MIPS_GOTSYM or
5887 higher. Therefore, it make sense to put those symbols
5888 that need GOT entries at the end of the symbol table. We
5889 do that here. */
5890 if (! mips_elf_sort_hash_table (info, 1))
5891 return FALSE;
5892
5893 if (g->global_gotsym != NULL)
5894 i = elf_hash_table (info)->dynsymcount - g->global_gotsym->dynindx;
5895 else
5896 /* If there are no global symbols, or none requiring
5897 relocations, then GLOBAL_GOTSYM will be NULL. */
5898 i = 0;
5899
5900 /* In the worst case, we'll get one stub per dynamic symbol, plus
5901 one to account for the dummy entry at the end required by IRIX
5902 rld. */
5903 loadable_size += MIPS_FUNCTION_STUB_SIZE * (i + 1);
5904
5905 /* Assume there are two loadable segments consisting of
5906 contiguous sections. Is 5 enough? */
5907 local_gotno = (loadable_size >> 16) + 5;
5908
5909 g->local_gotno += local_gotno;
5910 s->_raw_size += g->local_gotno * MIPS_ELF_GOT_SIZE (output_bfd);
5911
5912 g->global_gotno = i;
5913 s->_raw_size += i * MIPS_ELF_GOT_SIZE (output_bfd);
5914
5915 if (s->_raw_size > MIPS_ELF_GOT_MAX_SIZE (output_bfd)
5916 && ! mips_elf_multi_got (output_bfd, info, g, s, local_gotno))
5917 return FALSE;
5918
5919 return TRUE;
5920 }
5921
5922 /* Set the sizes of the dynamic sections. */
5923
5924 bfd_boolean
5925 _bfd_mips_elf_size_dynamic_sections (bfd *output_bfd,
5926 struct bfd_link_info *info)
5927 {
5928 bfd *dynobj;
5929 asection *s;
5930 bfd_boolean reltext;
5931
5932 dynobj = elf_hash_table (info)->dynobj;
5933 BFD_ASSERT (dynobj != NULL);
5934
5935 if (elf_hash_table (info)->dynamic_sections_created)
5936 {
5937 /* Set the contents of the .interp section to the interpreter. */
5938 if (info->executable)
5939 {
5940 s = bfd_get_section_by_name (dynobj, ".interp");
5941 BFD_ASSERT (s != NULL);
5942 s->_raw_size
5943 = strlen (ELF_DYNAMIC_INTERPRETER (output_bfd)) + 1;
5944 s->contents
5945 = (bfd_byte *) ELF_DYNAMIC_INTERPRETER (output_bfd);
5946 }
5947 }
5948
5949 /* The check_relocs and adjust_dynamic_symbol entry points have
5950 determined the sizes of the various dynamic sections. Allocate
5951 memory for them. */
5952 reltext = FALSE;
5953 for (s = dynobj->sections; s != NULL; s = s->next)
5954 {
5955 const char *name;
5956 bfd_boolean strip;
5957
5958 /* It's OK to base decisions on the section name, because none
5959 of the dynobj section names depend upon the input files. */
5960 name = bfd_get_section_name (dynobj, s);
5961
5962 if ((s->flags & SEC_LINKER_CREATED) == 0)
5963 continue;
5964
5965 strip = FALSE;
5966
5967 if (strncmp (name, ".rel", 4) == 0)
5968 {
5969 if (s->_raw_size == 0)
5970 {
5971 /* We only strip the section if the output section name
5972 has the same name. Otherwise, there might be several
5973 input sections for this output section. FIXME: This
5974 code is probably not needed these days anyhow, since
5975 the linker now does not create empty output sections. */
5976 if (s->output_section != NULL
5977 && strcmp (name,
5978 bfd_get_section_name (s->output_section->owner,
5979 s->output_section)) == 0)
5980 strip = TRUE;
5981 }
5982 else
5983 {
5984 const char *outname;
5985 asection *target;
5986
5987 /* If this relocation section applies to a read only
5988 section, then we probably need a DT_TEXTREL entry.
5989 If the relocation section is .rel.dyn, we always
5990 assert a DT_TEXTREL entry rather than testing whether
5991 there exists a relocation to a read only section or
5992 not. */
5993 outname = bfd_get_section_name (output_bfd,
5994 s->output_section);
5995 target = bfd_get_section_by_name (output_bfd, outname + 4);
5996 if ((target != NULL
5997 && (target->flags & SEC_READONLY) != 0
5998 && (target->flags & SEC_ALLOC) != 0)
5999 || strcmp (outname, ".rel.dyn") == 0)
6000 reltext = TRUE;
6001
6002 /* We use the reloc_count field as a counter if we need
6003 to copy relocs into the output file. */
6004 if (strcmp (name, ".rel.dyn") != 0)
6005 s->reloc_count = 0;
6006
6007 /* If combreloc is enabled, elf_link_sort_relocs() will
6008 sort relocations, but in a different way than we do,
6009 and before we're done creating relocations. Also, it
6010 will move them around between input sections'
6011 relocation's contents, so our sorting would be
6012 broken, so don't let it run. */
6013 info->combreloc = 0;
6014 }
6015 }
6016 else if (strncmp (name, ".got", 4) == 0)
6017 {
6018 /* _bfd_mips_elf_always_size_sections() has already done
6019 most of the work, but some symbols may have been mapped
6020 to versions that we must now resolve in the got_entries
6021 hash tables. */
6022 struct mips_got_info *gg = mips_elf_got_info (dynobj, NULL);
6023 struct mips_got_info *g = gg;
6024 struct mips_elf_set_global_got_offset_arg set_got_offset_arg;
6025 unsigned int needed_relocs = 0;
6026
6027 if (gg->next)
6028 {
6029 set_got_offset_arg.value = MIPS_ELF_GOT_SIZE (output_bfd);
6030 set_got_offset_arg.info = info;
6031
6032 mips_elf_resolve_final_got_entries (gg);
6033 for (g = gg->next; g && g->next != gg; g = g->next)
6034 {
6035 unsigned int save_assign;
6036
6037 mips_elf_resolve_final_got_entries (g);
6038
6039 /* Assign offsets to global GOT entries. */
6040 save_assign = g->assigned_gotno;
6041 g->assigned_gotno = g->local_gotno;
6042 set_got_offset_arg.g = g;
6043 set_got_offset_arg.needed_relocs = 0;
6044 htab_traverse (g->got_entries,
6045 mips_elf_set_global_got_offset,
6046 &set_got_offset_arg);
6047 needed_relocs += set_got_offset_arg.needed_relocs;
6048 BFD_ASSERT (g->assigned_gotno - g->local_gotno
6049 <= g->global_gotno);
6050
6051 g->assigned_gotno = save_assign;
6052 if (info->shared)
6053 {
6054 needed_relocs += g->local_gotno - g->assigned_gotno;
6055 BFD_ASSERT (g->assigned_gotno == g->next->local_gotno
6056 + g->next->global_gotno
6057 + MIPS_RESERVED_GOTNO);
6058 }
6059 }
6060
6061 if (needed_relocs)
6062 mips_elf_allocate_dynamic_relocations (dynobj, needed_relocs);
6063 }
6064 }
6065 else if (strcmp (name, MIPS_ELF_STUB_SECTION_NAME (output_bfd)) == 0)
6066 {
6067 /* IRIX rld assumes that the function stub isn't at the end
6068 of .text section. So put a dummy. XXX */
6069 s->_raw_size += MIPS_FUNCTION_STUB_SIZE;
6070 }
6071 else if (! info->shared
6072 && ! mips_elf_hash_table (info)->use_rld_obj_head
6073 && strncmp (name, ".rld_map", 8) == 0)
6074 {
6075 /* We add a room for __rld_map. It will be filled in by the
6076 rtld to contain a pointer to the _r_debug structure. */
6077 s->_raw_size += 4;
6078 }
6079 else if (SGI_COMPAT (output_bfd)
6080 && strncmp (name, ".compact_rel", 12) == 0)
6081 s->_raw_size += mips_elf_hash_table (info)->compact_rel_size;
6082 else if (strncmp (name, ".init", 5) != 0)
6083 {
6084 /* It's not one of our sections, so don't allocate space. */
6085 continue;
6086 }
6087
6088 if (strip)
6089 {
6090 _bfd_strip_section_from_output (info, s);
6091 continue;
6092 }
6093
6094 /* Allocate memory for the section contents. */
6095 s->contents = bfd_zalloc (dynobj, s->_raw_size);
6096 if (s->contents == NULL && s->_raw_size != 0)
6097 {
6098 bfd_set_error (bfd_error_no_memory);
6099 return FALSE;
6100 }
6101 }
6102
6103 if (elf_hash_table (info)->dynamic_sections_created)
6104 {
6105 /* Add some entries to the .dynamic section. We fill in the
6106 values later, in _bfd_mips_elf_finish_dynamic_sections, but we
6107 must add the entries now so that we get the correct size for
6108 the .dynamic section. The DT_DEBUG entry is filled in by the
6109 dynamic linker and used by the debugger. */
6110 if (! info->shared)
6111 {
6112 /* SGI object has the equivalence of DT_DEBUG in the
6113 DT_MIPS_RLD_MAP entry. */
6114 if (!MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_RLD_MAP, 0))
6115 return FALSE;
6116 if (!SGI_COMPAT (output_bfd))
6117 {
6118 if (!MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_DEBUG, 0))
6119 return FALSE;
6120 }
6121 }
6122 else
6123 {
6124 /* Shared libraries on traditional mips have DT_DEBUG. */
6125 if (!SGI_COMPAT (output_bfd))
6126 {
6127 if (!MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_DEBUG, 0))
6128 return FALSE;
6129 }
6130 }
6131
6132 if (reltext && SGI_COMPAT (output_bfd))
6133 info->flags |= DF_TEXTREL;
6134
6135 if ((info->flags & DF_TEXTREL) != 0)
6136 {
6137 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_TEXTREL, 0))
6138 return FALSE;
6139 }
6140
6141 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_PLTGOT, 0))
6142 return FALSE;
6143
6144 if (mips_elf_rel_dyn_section (dynobj, FALSE))
6145 {
6146 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_REL, 0))
6147 return FALSE;
6148
6149 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_RELSZ, 0))
6150 return FALSE;
6151
6152 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_RELENT, 0))
6153 return FALSE;
6154 }
6155
6156 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_RLD_VERSION, 0))
6157 return FALSE;
6158
6159 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_FLAGS, 0))
6160 return FALSE;
6161
6162 #if 0
6163 /* Time stamps in executable files are a bad idea. */
6164 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_TIME_STAMP, 0))
6165 return FALSE;
6166 #endif
6167
6168 #if 0 /* FIXME */
6169 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_ICHECKSUM, 0))
6170 return FALSE;
6171 #endif
6172
6173 #if 0 /* FIXME */
6174 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_IVERSION, 0))
6175 return FALSE;
6176 #endif
6177
6178 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_BASE_ADDRESS, 0))
6179 return FALSE;
6180
6181 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_LOCAL_GOTNO, 0))
6182 return FALSE;
6183
6184 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_SYMTABNO, 0))
6185 return FALSE;
6186
6187 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_UNREFEXTNO, 0))
6188 return FALSE;
6189
6190 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_GOTSYM, 0))
6191 return FALSE;
6192
6193 if (IRIX_COMPAT (dynobj) == ict_irix5
6194 && ! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_HIPAGENO, 0))
6195 return FALSE;
6196
6197 if (IRIX_COMPAT (dynobj) == ict_irix6
6198 && (bfd_get_section_by_name
6199 (dynobj, MIPS_ELF_OPTIONS_SECTION_NAME (dynobj)))
6200 && !MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_OPTIONS, 0))
6201 return FALSE;
6202 }
6203
6204 return TRUE;
6205 }
6206 \f
6207 /* Relocate a MIPS ELF section. */
6208
6209 bfd_boolean
6210 _bfd_mips_elf_relocate_section (bfd *output_bfd, struct bfd_link_info *info,
6211 bfd *input_bfd, asection *input_section,
6212 bfd_byte *contents, Elf_Internal_Rela *relocs,
6213 Elf_Internal_Sym *local_syms,
6214 asection **local_sections)
6215 {
6216 Elf_Internal_Rela *rel;
6217 const Elf_Internal_Rela *relend;
6218 bfd_vma addend = 0;
6219 bfd_boolean use_saved_addend_p = FALSE;
6220 const struct elf_backend_data *bed;
6221
6222 bed = get_elf_backend_data (output_bfd);
6223 relend = relocs + input_section->reloc_count * bed->s->int_rels_per_ext_rel;
6224 for (rel = relocs; rel < relend; ++rel)
6225 {
6226 const char *name;
6227 bfd_vma value;
6228 reloc_howto_type *howto;
6229 bfd_boolean require_jalx;
6230 /* TRUE if the relocation is a RELA relocation, rather than a
6231 REL relocation. */
6232 bfd_boolean rela_relocation_p = TRUE;
6233 unsigned int r_type = ELF_R_TYPE (output_bfd, rel->r_info);
6234 const char *msg;
6235
6236 /* Find the relocation howto for this relocation. */
6237 if (r_type == R_MIPS_64 && ! NEWABI_P (input_bfd))
6238 {
6239 /* Some 32-bit code uses R_MIPS_64. In particular, people use
6240 64-bit code, but make sure all their addresses are in the
6241 lowermost or uppermost 32-bit section of the 64-bit address
6242 space. Thus, when they use an R_MIPS_64 they mean what is
6243 usually meant by R_MIPS_32, with the exception that the
6244 stored value is sign-extended to 64 bits. */
6245 howto = MIPS_ELF_RTYPE_TO_HOWTO (input_bfd, R_MIPS_32, FALSE);
6246
6247 /* On big-endian systems, we need to lie about the position
6248 of the reloc. */
6249 if (bfd_big_endian (input_bfd))
6250 rel->r_offset += 4;
6251 }
6252 else
6253 /* NewABI defaults to RELA relocations. */
6254 howto = MIPS_ELF_RTYPE_TO_HOWTO (input_bfd, r_type,
6255 NEWABI_P (input_bfd)
6256 && (MIPS_RELOC_RELA_P
6257 (input_bfd, input_section,
6258 rel - relocs)));
6259
6260 if (!use_saved_addend_p)
6261 {
6262 Elf_Internal_Shdr *rel_hdr;
6263
6264 /* If these relocations were originally of the REL variety,
6265 we must pull the addend out of the field that will be
6266 relocated. Otherwise, we simply use the contents of the
6267 RELA relocation. To determine which flavor or relocation
6268 this is, we depend on the fact that the INPUT_SECTION's
6269 REL_HDR is read before its REL_HDR2. */
6270 rel_hdr = &elf_section_data (input_section)->rel_hdr;
6271 if ((size_t) (rel - relocs)
6272 >= (NUM_SHDR_ENTRIES (rel_hdr) * bed->s->int_rels_per_ext_rel))
6273 rel_hdr = elf_section_data (input_section)->rel_hdr2;
6274 if (rel_hdr->sh_entsize == MIPS_ELF_REL_SIZE (input_bfd))
6275 {
6276 /* Note that this is a REL relocation. */
6277 rela_relocation_p = FALSE;
6278
6279 /* Get the addend, which is stored in the input file. */
6280 addend = mips_elf_obtain_contents (howto, rel, input_bfd,
6281 contents);
6282 addend &= howto->src_mask;
6283
6284 /* For some kinds of relocations, the ADDEND is a
6285 combination of the addend stored in two different
6286 relocations. */
6287 if (r_type == R_MIPS_HI16
6288 || r_type == R_MIPS_GNU_REL_HI16
6289 || (r_type == R_MIPS_GOT16
6290 && mips_elf_local_relocation_p (input_bfd, rel,
6291 local_sections, FALSE)))
6292 {
6293 bfd_vma l;
6294 const Elf_Internal_Rela *lo16_relocation;
6295 reloc_howto_type *lo16_howto;
6296 unsigned int lo;
6297
6298 /* The combined value is the sum of the HI16 addend,
6299 left-shifted by sixteen bits, and the LO16
6300 addend, sign extended. (Usually, the code does
6301 a `lui' of the HI16 value, and then an `addiu' of
6302 the LO16 value.)
6303
6304 Scan ahead to find a matching LO16 relocation. */
6305 if (r_type == R_MIPS_GNU_REL_HI16)
6306 lo = R_MIPS_GNU_REL_LO16;
6307 else
6308 lo = R_MIPS_LO16;
6309 lo16_relocation = mips_elf_next_relocation (input_bfd, lo,
6310 rel, relend);
6311 if (lo16_relocation == NULL)
6312 return FALSE;
6313
6314 /* Obtain the addend kept there. */
6315 lo16_howto = MIPS_ELF_RTYPE_TO_HOWTO (input_bfd, lo, FALSE);
6316 l = mips_elf_obtain_contents (lo16_howto, lo16_relocation,
6317 input_bfd, contents);
6318 l &= lo16_howto->src_mask;
6319 l <<= lo16_howto->rightshift;
6320 l = _bfd_mips_elf_sign_extend (l, 16);
6321
6322 addend <<= 16;
6323
6324 /* Compute the combined addend. */
6325 addend += l;
6326
6327 /* If PC-relative, subtract the difference between the
6328 address of the LO part of the reloc and the address of
6329 the HI part. The relocation is relative to the LO
6330 part, but mips_elf_calculate_relocation() doesn't
6331 know its address or the difference from the HI part, so
6332 we subtract that difference here. See also the
6333 comment in mips_elf_calculate_relocation(). */
6334 if (r_type == R_MIPS_GNU_REL_HI16)
6335 addend -= (lo16_relocation->r_offset - rel->r_offset);
6336 }
6337 else if (r_type == R_MIPS16_GPREL)
6338 {
6339 /* The addend is scrambled in the object file. See
6340 mips_elf_perform_relocation for details on the
6341 format. */
6342 addend = (((addend & 0x1f0000) >> 5)
6343 | ((addend & 0x7e00000) >> 16)
6344 | (addend & 0x1f));
6345 }
6346 else
6347 addend <<= howto->rightshift;
6348 }
6349 else
6350 addend = rel->r_addend;
6351 }
6352
6353 if (info->relocatable)
6354 {
6355 Elf_Internal_Sym *sym;
6356 unsigned long r_symndx;
6357
6358 if (r_type == R_MIPS_64 && ! NEWABI_P (output_bfd)
6359 && bfd_big_endian (input_bfd))
6360 rel->r_offset -= 4;
6361
6362 /* Since we're just relocating, all we need to do is copy
6363 the relocations back out to the object file, unless
6364 they're against a section symbol, in which case we need
6365 to adjust by the section offset, or unless they're GP
6366 relative in which case we need to adjust by the amount
6367 that we're adjusting GP in this relocatable object. */
6368
6369 if (! mips_elf_local_relocation_p (input_bfd, rel, local_sections,
6370 FALSE))
6371 /* There's nothing to do for non-local relocations. */
6372 continue;
6373
6374 if (r_type == R_MIPS16_GPREL
6375 || r_type == R_MIPS_GPREL16
6376 || r_type == R_MIPS_GPREL32
6377 || r_type == R_MIPS_LITERAL)
6378 addend -= (_bfd_get_gp_value (output_bfd)
6379 - _bfd_get_gp_value (input_bfd));
6380
6381 r_symndx = ELF_R_SYM (output_bfd, rel->r_info);
6382 sym = local_syms + r_symndx;
6383 if (ELF_ST_TYPE (sym->st_info) == STT_SECTION)
6384 /* Adjust the addend appropriately. */
6385 addend += local_sections[r_symndx]->output_offset;
6386
6387 if (rela_relocation_p)
6388 /* If this is a RELA relocation, just update the addend. */
6389 rel->r_addend = addend;
6390 else
6391 {
6392 if (r_type == R_MIPS_HI16
6393 || r_type == R_MIPS_GOT16
6394 || r_type == R_MIPS_GNU_REL_HI16)
6395 addend = mips_elf_high (addend);
6396 else if (r_type == R_MIPS_HIGHER)
6397 addend = mips_elf_higher (addend);
6398 else if (r_type == R_MIPS_HIGHEST)
6399 addend = mips_elf_highest (addend);
6400 else
6401 addend >>= howto->rightshift;
6402
6403 /* We use the source mask, rather than the destination
6404 mask because the place to which we are writing will be
6405 source of the addend in the final link. */
6406 addend &= howto->src_mask;
6407
6408 if (r_type == R_MIPS_64 && ! NEWABI_P (output_bfd))
6409 /* See the comment above about using R_MIPS_64 in the 32-bit
6410 ABI. Here, we need to update the addend. It would be
6411 possible to get away with just using the R_MIPS_32 reloc
6412 but for endianness. */
6413 {
6414 bfd_vma sign_bits;
6415 bfd_vma low_bits;
6416 bfd_vma high_bits;
6417
6418 if (addend & ((bfd_vma) 1 << 31))
6419 #ifdef BFD64
6420 sign_bits = ((bfd_vma) 1 << 32) - 1;
6421 #else
6422 sign_bits = -1;
6423 #endif
6424 else
6425 sign_bits = 0;
6426
6427 /* If we don't know that we have a 64-bit type,
6428 do two separate stores. */
6429 if (bfd_big_endian (input_bfd))
6430 {
6431 /* Store the sign-bits (which are most significant)
6432 first. */
6433 low_bits = sign_bits;
6434 high_bits = addend;
6435 }
6436 else
6437 {
6438 low_bits = addend;
6439 high_bits = sign_bits;
6440 }
6441 bfd_put_32 (input_bfd, low_bits,
6442 contents + rel->r_offset);
6443 bfd_put_32 (input_bfd, high_bits,
6444 contents + rel->r_offset + 4);
6445 continue;
6446 }
6447
6448 if (! mips_elf_perform_relocation (info, howto, rel, addend,
6449 input_bfd, input_section,
6450 contents, FALSE))
6451 return FALSE;
6452 }
6453
6454 /* Go on to the next relocation. */
6455 continue;
6456 }
6457
6458 /* In the N32 and 64-bit ABIs there may be multiple consecutive
6459 relocations for the same offset. In that case we are
6460 supposed to treat the output of each relocation as the addend
6461 for the next. */
6462 if (rel + 1 < relend
6463 && rel->r_offset == rel[1].r_offset
6464 && ELF_R_TYPE (input_bfd, rel[1].r_info) != R_MIPS_NONE)
6465 use_saved_addend_p = TRUE;
6466 else
6467 use_saved_addend_p = FALSE;
6468
6469 /* Figure out what value we are supposed to relocate. */
6470 switch (mips_elf_calculate_relocation (output_bfd, input_bfd,
6471 input_section, info, rel,
6472 addend, howto, local_syms,
6473 local_sections, &value,
6474 &name, &require_jalx,
6475 use_saved_addend_p))
6476 {
6477 case bfd_reloc_continue:
6478 /* There's nothing to do. */
6479 continue;
6480
6481 case bfd_reloc_undefined:
6482 /* mips_elf_calculate_relocation already called the
6483 undefined_symbol callback. There's no real point in
6484 trying to perform the relocation at this point, so we
6485 just skip ahead to the next relocation. */
6486 continue;
6487
6488 case bfd_reloc_notsupported:
6489 msg = _("internal error: unsupported relocation error");
6490 info->callbacks->warning
6491 (info, msg, name, input_bfd, input_section, rel->r_offset);
6492 return FALSE;
6493
6494 case bfd_reloc_overflow:
6495 if (use_saved_addend_p)
6496 /* Ignore overflow until we reach the last relocation for
6497 a given location. */
6498 ;
6499 else
6500 {
6501 BFD_ASSERT (name != NULL);
6502 if (! ((*info->callbacks->reloc_overflow)
6503 (info, name, howto->name, 0,
6504 input_bfd, input_section, rel->r_offset)))
6505 return FALSE;
6506 }
6507 break;
6508
6509 case bfd_reloc_ok:
6510 break;
6511
6512 default:
6513 abort ();
6514 break;
6515 }
6516
6517 /* If we've got another relocation for the address, keep going
6518 until we reach the last one. */
6519 if (use_saved_addend_p)
6520 {
6521 addend = value;
6522 continue;
6523 }
6524
6525 if (r_type == R_MIPS_64 && ! NEWABI_P (output_bfd))
6526 /* See the comment above about using R_MIPS_64 in the 32-bit
6527 ABI. Until now, we've been using the HOWTO for R_MIPS_32;
6528 that calculated the right value. Now, however, we
6529 sign-extend the 32-bit result to 64-bits, and store it as a
6530 64-bit value. We are especially generous here in that we
6531 go to extreme lengths to support this usage on systems with
6532 only a 32-bit VMA. */
6533 {
6534 bfd_vma sign_bits;
6535 bfd_vma low_bits;
6536 bfd_vma high_bits;
6537
6538 if (value & ((bfd_vma) 1 << 31))
6539 #ifdef BFD64
6540 sign_bits = ((bfd_vma) 1 << 32) - 1;
6541 #else
6542 sign_bits = -1;
6543 #endif
6544 else
6545 sign_bits = 0;
6546
6547 /* If we don't know that we have a 64-bit type,
6548 do two separate stores. */
6549 if (bfd_big_endian (input_bfd))
6550 {
6551 /* Undo what we did above. */
6552 rel->r_offset -= 4;
6553 /* Store the sign-bits (which are most significant)
6554 first. */
6555 low_bits = sign_bits;
6556 high_bits = value;
6557 }
6558 else
6559 {
6560 low_bits = value;
6561 high_bits = sign_bits;
6562 }
6563 bfd_put_32 (input_bfd, low_bits,
6564 contents + rel->r_offset);
6565 bfd_put_32 (input_bfd, high_bits,
6566 contents + rel->r_offset + 4);
6567 continue;
6568 }
6569
6570 /* Actually perform the relocation. */
6571 if (! mips_elf_perform_relocation (info, howto, rel, value,
6572 input_bfd, input_section,
6573 contents, require_jalx))
6574 return FALSE;
6575 }
6576
6577 return TRUE;
6578 }
6579 \f
6580 /* If NAME is one of the special IRIX6 symbols defined by the linker,
6581 adjust it appropriately now. */
6582
6583 static void
6584 mips_elf_irix6_finish_dynamic_symbol (bfd *abfd ATTRIBUTE_UNUSED,
6585 const char *name, Elf_Internal_Sym *sym)
6586 {
6587 /* The linker script takes care of providing names and values for
6588 these, but we must place them into the right sections. */
6589 static const char* const text_section_symbols[] = {
6590 "_ftext",
6591 "_etext",
6592 "__dso_displacement",
6593 "__elf_header",
6594 "__program_header_table",
6595 NULL
6596 };
6597
6598 static const char* const data_section_symbols[] = {
6599 "_fdata",
6600 "_edata",
6601 "_end",
6602 "_fbss",
6603 NULL
6604 };
6605
6606 const char* const *p;
6607 int i;
6608
6609 for (i = 0; i < 2; ++i)
6610 for (p = (i == 0) ? text_section_symbols : data_section_symbols;
6611 *p;
6612 ++p)
6613 if (strcmp (*p, name) == 0)
6614 {
6615 /* All of these symbols are given type STT_SECTION by the
6616 IRIX6 linker. */
6617 sym->st_info = ELF_ST_INFO (STB_GLOBAL, STT_SECTION);
6618 sym->st_other = STO_PROTECTED;
6619
6620 /* The IRIX linker puts these symbols in special sections. */
6621 if (i == 0)
6622 sym->st_shndx = SHN_MIPS_TEXT;
6623 else
6624 sym->st_shndx = SHN_MIPS_DATA;
6625
6626 break;
6627 }
6628 }
6629
6630 /* Finish up dynamic symbol handling. We set the contents of various
6631 dynamic sections here. */
6632
6633 bfd_boolean
6634 _bfd_mips_elf_finish_dynamic_symbol (bfd *output_bfd,
6635 struct bfd_link_info *info,
6636 struct elf_link_hash_entry *h,
6637 Elf_Internal_Sym *sym)
6638 {
6639 bfd *dynobj;
6640 bfd_vma gval;
6641 asection *sgot;
6642 struct mips_got_info *g, *gg;
6643 const char *name;
6644
6645 dynobj = elf_hash_table (info)->dynobj;
6646 gval = sym->st_value;
6647
6648 if (h->plt.offset != (bfd_vma) -1)
6649 {
6650 asection *s;
6651 bfd_byte stub[MIPS_FUNCTION_STUB_SIZE];
6652
6653 /* This symbol has a stub. Set it up. */
6654
6655 BFD_ASSERT (h->dynindx != -1);
6656
6657 s = bfd_get_section_by_name (dynobj,
6658 MIPS_ELF_STUB_SECTION_NAME (dynobj));
6659 BFD_ASSERT (s != NULL);
6660
6661 /* FIXME: Can h->dynindex be more than 64K? */
6662 if (h->dynindx & 0xffff0000)
6663 return FALSE;
6664
6665 /* Fill the stub. */
6666 bfd_put_32 (output_bfd, STUB_LW (output_bfd), stub);
6667 bfd_put_32 (output_bfd, STUB_MOVE (output_bfd), stub + 4);
6668 bfd_put_32 (output_bfd, STUB_JALR, stub + 8);
6669 bfd_put_32 (output_bfd, STUB_LI16 (output_bfd) + h->dynindx, stub + 12);
6670
6671 BFD_ASSERT (h->plt.offset <= s->_raw_size);
6672 memcpy (s->contents + h->plt.offset, stub, MIPS_FUNCTION_STUB_SIZE);
6673
6674 /* Mark the symbol as undefined. plt.offset != -1 occurs
6675 only for the referenced symbol. */
6676 sym->st_shndx = SHN_UNDEF;
6677
6678 /* The run-time linker uses the st_value field of the symbol
6679 to reset the global offset table entry for this external
6680 to its stub address when unlinking a shared object. */
6681 gval = s->output_section->vma + s->output_offset + h->plt.offset;
6682 sym->st_value = gval;
6683 }
6684
6685 BFD_ASSERT (h->dynindx != -1
6686 || (h->elf_link_hash_flags & ELF_LINK_FORCED_LOCAL) != 0);
6687
6688 sgot = mips_elf_got_section (dynobj, FALSE);
6689 BFD_ASSERT (sgot != NULL);
6690 BFD_ASSERT (mips_elf_section_data (sgot) != NULL);
6691 g = mips_elf_section_data (sgot)->u.got_info;
6692 BFD_ASSERT (g != NULL);
6693
6694 /* Run through the global symbol table, creating GOT entries for all
6695 the symbols that need them. */
6696 if (g->global_gotsym != NULL
6697 && h->dynindx >= g->global_gotsym->dynindx)
6698 {
6699 bfd_vma offset;
6700 bfd_vma value;
6701
6702 value = sym->st_value;
6703 offset = mips_elf_global_got_index (dynobj, output_bfd, h);
6704 MIPS_ELF_PUT_WORD (output_bfd, value, sgot->contents + offset);
6705 }
6706
6707 if (g->next && h->dynindx != -1)
6708 {
6709 struct mips_got_entry e, *p;
6710 bfd_vma entry;
6711 bfd_vma offset;
6712
6713 gg = g;
6714
6715 e.abfd = output_bfd;
6716 e.symndx = -1;
6717 e.d.h = (struct mips_elf_link_hash_entry *)h;
6718
6719 for (g = g->next; g->next != gg; g = g->next)
6720 {
6721 if (g->got_entries
6722 && (p = (struct mips_got_entry *) htab_find (g->got_entries,
6723 &e)))
6724 {
6725 offset = p->gotidx;
6726 if (info->shared
6727 || (elf_hash_table (info)->dynamic_sections_created
6728 && p->d.h != NULL
6729 && ((p->d.h->root.elf_link_hash_flags
6730 & ELF_LINK_HASH_DEF_DYNAMIC) != 0)
6731 && ((p->d.h->root.elf_link_hash_flags
6732 & ELF_LINK_HASH_DEF_REGULAR) == 0)))
6733 {
6734 /* Create an R_MIPS_REL32 relocation for this entry. Due to
6735 the various compatibility problems, it's easier to mock
6736 up an R_MIPS_32 or R_MIPS_64 relocation and leave
6737 mips_elf_create_dynamic_relocation to calculate the
6738 appropriate addend. */
6739 Elf_Internal_Rela rel[3];
6740
6741 memset (rel, 0, sizeof (rel));
6742 if (ABI_64_P (output_bfd))
6743 rel[0].r_info = ELF_R_INFO (output_bfd, 0, R_MIPS_64);
6744 else
6745 rel[0].r_info = ELF_R_INFO (output_bfd, 0, R_MIPS_32);
6746 rel[0].r_offset = rel[1].r_offset = rel[2].r_offset = offset;
6747
6748 entry = 0;
6749 if (! (mips_elf_create_dynamic_relocation
6750 (output_bfd, info, rel,
6751 e.d.h, NULL, sym->st_value, &entry, sgot)))
6752 return FALSE;
6753 }
6754 else
6755 entry = sym->st_value;
6756 MIPS_ELF_PUT_WORD (output_bfd, entry, sgot->contents + offset);
6757 }
6758 }
6759 }
6760
6761 /* Mark _DYNAMIC and _GLOBAL_OFFSET_TABLE_ as absolute. */
6762 name = h->root.root.string;
6763 if (strcmp (name, "_DYNAMIC") == 0
6764 || strcmp (name, "_GLOBAL_OFFSET_TABLE_") == 0)
6765 sym->st_shndx = SHN_ABS;
6766 else if (strcmp (name, "_DYNAMIC_LINK") == 0
6767 || strcmp (name, "_DYNAMIC_LINKING") == 0)
6768 {
6769 sym->st_shndx = SHN_ABS;
6770 sym->st_info = ELF_ST_INFO (STB_GLOBAL, STT_SECTION);
6771 sym->st_value = 1;
6772 }
6773 else if (strcmp (name, "_gp_disp") == 0 && ! NEWABI_P (output_bfd))
6774 {
6775 sym->st_shndx = SHN_ABS;
6776 sym->st_info = ELF_ST_INFO (STB_GLOBAL, STT_SECTION);
6777 sym->st_value = elf_gp (output_bfd);
6778 }
6779 else if (SGI_COMPAT (output_bfd))
6780 {
6781 if (strcmp (name, mips_elf_dynsym_rtproc_names[0]) == 0
6782 || strcmp (name, mips_elf_dynsym_rtproc_names[1]) == 0)
6783 {
6784 sym->st_info = ELF_ST_INFO (STB_GLOBAL, STT_SECTION);
6785 sym->st_other = STO_PROTECTED;
6786 sym->st_value = 0;
6787 sym->st_shndx = SHN_MIPS_DATA;
6788 }
6789 else if (strcmp (name, mips_elf_dynsym_rtproc_names[2]) == 0)
6790 {
6791 sym->st_info = ELF_ST_INFO (STB_GLOBAL, STT_SECTION);
6792 sym->st_other = STO_PROTECTED;
6793 sym->st_value = mips_elf_hash_table (info)->procedure_count;
6794 sym->st_shndx = SHN_ABS;
6795 }
6796 else if (sym->st_shndx != SHN_UNDEF && sym->st_shndx != SHN_ABS)
6797 {
6798 if (h->type == STT_FUNC)
6799 sym->st_shndx = SHN_MIPS_TEXT;
6800 else if (h->type == STT_OBJECT)
6801 sym->st_shndx = SHN_MIPS_DATA;
6802 }
6803 }
6804
6805 /* Handle the IRIX6-specific symbols. */
6806 if (IRIX_COMPAT (output_bfd) == ict_irix6)
6807 mips_elf_irix6_finish_dynamic_symbol (output_bfd, name, sym);
6808
6809 if (! info->shared)
6810 {
6811 if (! mips_elf_hash_table (info)->use_rld_obj_head
6812 && (strcmp (name, "__rld_map") == 0
6813 || strcmp (name, "__RLD_MAP") == 0))
6814 {
6815 asection *s = bfd_get_section_by_name (dynobj, ".rld_map");
6816 BFD_ASSERT (s != NULL);
6817 sym->st_value = s->output_section->vma + s->output_offset;
6818 bfd_put_32 (output_bfd, 0, s->contents);
6819 if (mips_elf_hash_table (info)->rld_value == 0)
6820 mips_elf_hash_table (info)->rld_value = sym->st_value;
6821 }
6822 else if (mips_elf_hash_table (info)->use_rld_obj_head
6823 && strcmp (name, "__rld_obj_head") == 0)
6824 {
6825 /* IRIX6 does not use a .rld_map section. */
6826 if (IRIX_COMPAT (output_bfd) == ict_irix5
6827 || IRIX_COMPAT (output_bfd) == ict_none)
6828 BFD_ASSERT (bfd_get_section_by_name (dynobj, ".rld_map")
6829 != NULL);
6830 mips_elf_hash_table (info)->rld_value = sym->st_value;
6831 }
6832 }
6833
6834 /* If this is a mips16 symbol, force the value to be even. */
6835 if (sym->st_other == STO_MIPS16
6836 && (sym->st_value & 1) != 0)
6837 --sym->st_value;
6838
6839 return TRUE;
6840 }
6841
6842 /* Finish up the dynamic sections. */
6843
6844 bfd_boolean
6845 _bfd_mips_elf_finish_dynamic_sections (bfd *output_bfd,
6846 struct bfd_link_info *info)
6847 {
6848 bfd *dynobj;
6849 asection *sdyn;
6850 asection *sgot;
6851 struct mips_got_info *gg, *g;
6852
6853 dynobj = elf_hash_table (info)->dynobj;
6854
6855 sdyn = bfd_get_section_by_name (dynobj, ".dynamic");
6856
6857 sgot = mips_elf_got_section (dynobj, FALSE);
6858 if (sgot == NULL)
6859 gg = g = NULL;
6860 else
6861 {
6862 BFD_ASSERT (mips_elf_section_data (sgot) != NULL);
6863 gg = mips_elf_section_data (sgot)->u.got_info;
6864 BFD_ASSERT (gg != NULL);
6865 g = mips_elf_got_for_ibfd (gg, output_bfd);
6866 BFD_ASSERT (g != NULL);
6867 }
6868
6869 if (elf_hash_table (info)->dynamic_sections_created)
6870 {
6871 bfd_byte *b;
6872
6873 BFD_ASSERT (sdyn != NULL);
6874 BFD_ASSERT (g != NULL);
6875
6876 for (b = sdyn->contents;
6877 b < sdyn->contents + sdyn->_raw_size;
6878 b += MIPS_ELF_DYN_SIZE (dynobj))
6879 {
6880 Elf_Internal_Dyn dyn;
6881 const char *name;
6882 size_t elemsize;
6883 asection *s;
6884 bfd_boolean swap_out_p;
6885
6886 /* Read in the current dynamic entry. */
6887 (*get_elf_backend_data (dynobj)->s->swap_dyn_in) (dynobj, b, &dyn);
6888
6889 /* Assume that we're going to modify it and write it out. */
6890 swap_out_p = TRUE;
6891
6892 switch (dyn.d_tag)
6893 {
6894 case DT_RELENT:
6895 s = mips_elf_rel_dyn_section (dynobj, FALSE);
6896 BFD_ASSERT (s != NULL);
6897 dyn.d_un.d_val = MIPS_ELF_REL_SIZE (dynobj);
6898 break;
6899
6900 case DT_STRSZ:
6901 /* Rewrite DT_STRSZ. */
6902 dyn.d_un.d_val =
6903 _bfd_elf_strtab_size (elf_hash_table (info)->dynstr);
6904 break;
6905
6906 case DT_PLTGOT:
6907 name = ".got";
6908 s = bfd_get_section_by_name (output_bfd, name);
6909 BFD_ASSERT (s != NULL);
6910 dyn.d_un.d_ptr = s->vma;
6911 break;
6912
6913 case DT_MIPS_RLD_VERSION:
6914 dyn.d_un.d_val = 1; /* XXX */
6915 break;
6916
6917 case DT_MIPS_FLAGS:
6918 dyn.d_un.d_val = RHF_NOTPOT; /* XXX */
6919 break;
6920
6921 case DT_MIPS_TIME_STAMP:
6922 time ((time_t *) &dyn.d_un.d_val);
6923 break;
6924
6925 case DT_MIPS_ICHECKSUM:
6926 /* XXX FIXME: */
6927 swap_out_p = FALSE;
6928 break;
6929
6930 case DT_MIPS_IVERSION:
6931 /* XXX FIXME: */
6932 swap_out_p = FALSE;
6933 break;
6934
6935 case DT_MIPS_BASE_ADDRESS:
6936 s = output_bfd->sections;
6937 BFD_ASSERT (s != NULL);
6938 dyn.d_un.d_ptr = s->vma & ~(bfd_vma) 0xffff;
6939 break;
6940
6941 case DT_MIPS_LOCAL_GOTNO:
6942 dyn.d_un.d_val = g->local_gotno;
6943 break;
6944
6945 case DT_MIPS_UNREFEXTNO:
6946 /* The index into the dynamic symbol table which is the
6947 entry of the first external symbol that is not
6948 referenced within the same object. */
6949 dyn.d_un.d_val = bfd_count_sections (output_bfd) + 1;
6950 break;
6951
6952 case DT_MIPS_GOTSYM:
6953 if (gg->global_gotsym)
6954 {
6955 dyn.d_un.d_val = gg->global_gotsym->dynindx;
6956 break;
6957 }
6958 /* In case if we don't have global got symbols we default
6959 to setting DT_MIPS_GOTSYM to the same value as
6960 DT_MIPS_SYMTABNO, so we just fall through. */
6961
6962 case DT_MIPS_SYMTABNO:
6963 name = ".dynsym";
6964 elemsize = MIPS_ELF_SYM_SIZE (output_bfd);
6965 s = bfd_get_section_by_name (output_bfd, name);
6966 BFD_ASSERT (s != NULL);
6967
6968 if (s->_cooked_size != 0)
6969 dyn.d_un.d_val = s->_cooked_size / elemsize;
6970 else
6971 dyn.d_un.d_val = s->_raw_size / elemsize;
6972 break;
6973
6974 case DT_MIPS_HIPAGENO:
6975 dyn.d_un.d_val = g->local_gotno - MIPS_RESERVED_GOTNO;
6976 break;
6977
6978 case DT_MIPS_RLD_MAP:
6979 dyn.d_un.d_ptr = mips_elf_hash_table (info)->rld_value;
6980 break;
6981
6982 case DT_MIPS_OPTIONS:
6983 s = (bfd_get_section_by_name
6984 (output_bfd, MIPS_ELF_OPTIONS_SECTION_NAME (output_bfd)));
6985 dyn.d_un.d_ptr = s->vma;
6986 break;
6987
6988 case DT_RELSZ:
6989 /* Reduce DT_RELSZ to account for any relocations we
6990 decided not to make. This is for the n64 irix rld,
6991 which doesn't seem to apply any relocations if there
6992 are trailing null entries. */
6993 s = mips_elf_rel_dyn_section (dynobj, FALSE);
6994 dyn.d_un.d_val = (s->reloc_count
6995 * (ABI_64_P (output_bfd)
6996 ? sizeof (Elf64_Mips_External_Rel)
6997 : sizeof (Elf32_External_Rel)));
6998 break;
6999
7000 default:
7001 swap_out_p = FALSE;
7002 break;
7003 }
7004
7005 if (swap_out_p)
7006 (*get_elf_backend_data (dynobj)->s->swap_dyn_out)
7007 (dynobj, &dyn, b);
7008 }
7009 }
7010
7011 /* The first entry of the global offset table will be filled at
7012 runtime. The second entry will be used by some runtime loaders.
7013 This isn't the case of IRIX rld. */
7014 if (sgot != NULL && sgot->_raw_size > 0)
7015 {
7016 MIPS_ELF_PUT_WORD (output_bfd, 0, sgot->contents);
7017 MIPS_ELF_PUT_WORD (output_bfd, 0x80000000,
7018 sgot->contents + MIPS_ELF_GOT_SIZE (output_bfd));
7019 }
7020
7021 if (sgot != NULL)
7022 elf_section_data (sgot->output_section)->this_hdr.sh_entsize
7023 = MIPS_ELF_GOT_SIZE (output_bfd);
7024
7025 /* Generate dynamic relocations for the non-primary gots. */
7026 if (gg != NULL && gg->next)
7027 {
7028 Elf_Internal_Rela rel[3];
7029 bfd_vma addend = 0;
7030
7031 memset (rel, 0, sizeof (rel));
7032 rel[0].r_info = ELF_R_INFO (output_bfd, 0, R_MIPS_REL32);
7033
7034 for (g = gg->next; g->next != gg; g = g->next)
7035 {
7036 bfd_vma index = g->next->local_gotno + g->next->global_gotno;
7037
7038 MIPS_ELF_PUT_WORD (output_bfd, 0, sgot->contents
7039 + index++ * MIPS_ELF_GOT_SIZE (output_bfd));
7040 MIPS_ELF_PUT_WORD (output_bfd, 0x80000000, sgot->contents
7041 + index++ * MIPS_ELF_GOT_SIZE (output_bfd));
7042
7043 if (! info->shared)
7044 continue;
7045
7046 while (index < g->assigned_gotno)
7047 {
7048 rel[0].r_offset = rel[1].r_offset = rel[2].r_offset
7049 = index++ * MIPS_ELF_GOT_SIZE (output_bfd);
7050 if (!(mips_elf_create_dynamic_relocation
7051 (output_bfd, info, rel, NULL,
7052 bfd_abs_section_ptr,
7053 0, &addend, sgot)))
7054 return FALSE;
7055 BFD_ASSERT (addend == 0);
7056 }
7057 }
7058 }
7059
7060 {
7061 asection *s;
7062 Elf32_compact_rel cpt;
7063
7064 if (SGI_COMPAT (output_bfd))
7065 {
7066 /* Write .compact_rel section out. */
7067 s = bfd_get_section_by_name (dynobj, ".compact_rel");
7068 if (s != NULL)
7069 {
7070 cpt.id1 = 1;
7071 cpt.num = s->reloc_count;
7072 cpt.id2 = 2;
7073 cpt.offset = (s->output_section->filepos
7074 + sizeof (Elf32_External_compact_rel));
7075 cpt.reserved0 = 0;
7076 cpt.reserved1 = 0;
7077 bfd_elf32_swap_compact_rel_out (output_bfd, &cpt,
7078 ((Elf32_External_compact_rel *)
7079 s->contents));
7080
7081 /* Clean up a dummy stub function entry in .text. */
7082 s = bfd_get_section_by_name (dynobj,
7083 MIPS_ELF_STUB_SECTION_NAME (dynobj));
7084 if (s != NULL)
7085 {
7086 file_ptr dummy_offset;
7087
7088 BFD_ASSERT (s->_raw_size >= MIPS_FUNCTION_STUB_SIZE);
7089 dummy_offset = s->_raw_size - MIPS_FUNCTION_STUB_SIZE;
7090 memset (s->contents + dummy_offset, 0,
7091 MIPS_FUNCTION_STUB_SIZE);
7092 }
7093 }
7094 }
7095
7096 /* We need to sort the entries of the dynamic relocation section. */
7097
7098 s = mips_elf_rel_dyn_section (dynobj, FALSE);
7099
7100 if (s != NULL
7101 && s->_raw_size > (bfd_vma)2 * MIPS_ELF_REL_SIZE (output_bfd))
7102 {
7103 reldyn_sorting_bfd = output_bfd;
7104
7105 if (ABI_64_P (output_bfd))
7106 qsort ((Elf64_External_Rel *) s->contents + 1, s->reloc_count - 1,
7107 sizeof (Elf64_Mips_External_Rel), sort_dynamic_relocs_64);
7108 else
7109 qsort ((Elf32_External_Rel *) s->contents + 1, s->reloc_count - 1,
7110 sizeof (Elf32_External_Rel), sort_dynamic_relocs);
7111 }
7112 }
7113
7114 return TRUE;
7115 }
7116
7117
7118 /* Set ABFD's EF_MIPS_ARCH and EF_MIPS_MACH flags. */
7119
7120 static void
7121 mips_set_isa_flags (bfd *abfd)
7122 {
7123 flagword val;
7124
7125 switch (bfd_get_mach (abfd))
7126 {
7127 default:
7128 case bfd_mach_mips3000:
7129 val = E_MIPS_ARCH_1;
7130 break;
7131
7132 case bfd_mach_mips3900:
7133 val = E_MIPS_ARCH_1 | E_MIPS_MACH_3900;
7134 break;
7135
7136 case bfd_mach_mips6000:
7137 val = E_MIPS_ARCH_2;
7138 break;
7139
7140 case bfd_mach_mips4000:
7141 case bfd_mach_mips4300:
7142 case bfd_mach_mips4400:
7143 case bfd_mach_mips4600:
7144 val = E_MIPS_ARCH_3;
7145 break;
7146
7147 case bfd_mach_mips4010:
7148 val = E_MIPS_ARCH_3 | E_MIPS_MACH_4010;
7149 break;
7150
7151 case bfd_mach_mips4100:
7152 val = E_MIPS_ARCH_3 | E_MIPS_MACH_4100;
7153 break;
7154
7155 case bfd_mach_mips4111:
7156 val = E_MIPS_ARCH_3 | E_MIPS_MACH_4111;
7157 break;
7158
7159 case bfd_mach_mips4120:
7160 val = E_MIPS_ARCH_3 | E_MIPS_MACH_4120;
7161 break;
7162
7163 case bfd_mach_mips4650:
7164 val = E_MIPS_ARCH_3 | E_MIPS_MACH_4650;
7165 break;
7166
7167 case bfd_mach_mips5400:
7168 val = E_MIPS_ARCH_4 | E_MIPS_MACH_5400;
7169 break;
7170
7171 case bfd_mach_mips5500:
7172 val = E_MIPS_ARCH_4 | E_MIPS_MACH_5500;
7173 break;
7174
7175 case bfd_mach_mips5000:
7176 case bfd_mach_mips7000:
7177 case bfd_mach_mips8000:
7178 case bfd_mach_mips10000:
7179 case bfd_mach_mips12000:
7180 val = E_MIPS_ARCH_4;
7181 break;
7182
7183 case bfd_mach_mips5:
7184 val = E_MIPS_ARCH_5;
7185 break;
7186
7187 case bfd_mach_mips_sb1:
7188 val = E_MIPS_ARCH_64 | E_MIPS_MACH_SB1;
7189 break;
7190
7191 case bfd_mach_mipsisa32:
7192 val = E_MIPS_ARCH_32;
7193 break;
7194
7195 case bfd_mach_mipsisa64:
7196 val = E_MIPS_ARCH_64;
7197 break;
7198
7199 case bfd_mach_mipsisa32r2:
7200 val = E_MIPS_ARCH_32R2;
7201 break;
7202
7203 case bfd_mach_mipsisa64r2:
7204 val = E_MIPS_ARCH_64R2;
7205 break;
7206 }
7207 elf_elfheader (abfd)->e_flags &= ~(EF_MIPS_ARCH | EF_MIPS_MACH);
7208 elf_elfheader (abfd)->e_flags |= val;
7209
7210 }
7211
7212
7213 /* The final processing done just before writing out a MIPS ELF object
7214 file. This gets the MIPS architecture right based on the machine
7215 number. This is used by both the 32-bit and the 64-bit ABI. */
7216
7217 void
7218 _bfd_mips_elf_final_write_processing (bfd *abfd,
7219 bfd_boolean linker ATTRIBUTE_UNUSED)
7220 {
7221 unsigned int i;
7222 Elf_Internal_Shdr **hdrpp;
7223 const char *name;
7224 asection *sec;
7225
7226 /* Keep the existing EF_MIPS_MACH and EF_MIPS_ARCH flags if the former
7227 is nonzero. This is for compatibility with old objects, which used
7228 a combination of a 32-bit EF_MIPS_ARCH and a 64-bit EF_MIPS_MACH. */
7229 if ((elf_elfheader (abfd)->e_flags & EF_MIPS_MACH) == 0)
7230 mips_set_isa_flags (abfd);
7231
7232 /* Set the sh_info field for .gptab sections and other appropriate
7233 info for each special section. */
7234 for (i = 1, hdrpp = elf_elfsections (abfd) + 1;
7235 i < elf_numsections (abfd);
7236 i++, hdrpp++)
7237 {
7238 switch ((*hdrpp)->sh_type)
7239 {
7240 case SHT_MIPS_MSYM:
7241 case SHT_MIPS_LIBLIST:
7242 sec = bfd_get_section_by_name (abfd, ".dynstr");
7243 if (sec != NULL)
7244 (*hdrpp)->sh_link = elf_section_data (sec)->this_idx;
7245 break;
7246
7247 case SHT_MIPS_GPTAB:
7248 BFD_ASSERT ((*hdrpp)->bfd_section != NULL);
7249 name = bfd_get_section_name (abfd, (*hdrpp)->bfd_section);
7250 BFD_ASSERT (name != NULL
7251 && strncmp (name, ".gptab.", sizeof ".gptab." - 1) == 0);
7252 sec = bfd_get_section_by_name (abfd, name + sizeof ".gptab" - 1);
7253 BFD_ASSERT (sec != NULL);
7254 (*hdrpp)->sh_info = elf_section_data (sec)->this_idx;
7255 break;
7256
7257 case SHT_MIPS_CONTENT:
7258 BFD_ASSERT ((*hdrpp)->bfd_section != NULL);
7259 name = bfd_get_section_name (abfd, (*hdrpp)->bfd_section);
7260 BFD_ASSERT (name != NULL
7261 && strncmp (name, ".MIPS.content",
7262 sizeof ".MIPS.content" - 1) == 0);
7263 sec = bfd_get_section_by_name (abfd,
7264 name + sizeof ".MIPS.content" - 1);
7265 BFD_ASSERT (sec != NULL);
7266 (*hdrpp)->sh_link = elf_section_data (sec)->this_idx;
7267 break;
7268
7269 case SHT_MIPS_SYMBOL_LIB:
7270 sec = bfd_get_section_by_name (abfd, ".dynsym");
7271 if (sec != NULL)
7272 (*hdrpp)->sh_link = elf_section_data (sec)->this_idx;
7273 sec = bfd_get_section_by_name (abfd, ".liblist");
7274 if (sec != NULL)
7275 (*hdrpp)->sh_info = elf_section_data (sec)->this_idx;
7276 break;
7277
7278 case SHT_MIPS_EVENTS:
7279 BFD_ASSERT ((*hdrpp)->bfd_section != NULL);
7280 name = bfd_get_section_name (abfd, (*hdrpp)->bfd_section);
7281 BFD_ASSERT (name != NULL);
7282 if (strncmp (name, ".MIPS.events", sizeof ".MIPS.events" - 1) == 0)
7283 sec = bfd_get_section_by_name (abfd,
7284 name + sizeof ".MIPS.events" - 1);
7285 else
7286 {
7287 BFD_ASSERT (strncmp (name, ".MIPS.post_rel",
7288 sizeof ".MIPS.post_rel" - 1) == 0);
7289 sec = bfd_get_section_by_name (abfd,
7290 (name
7291 + sizeof ".MIPS.post_rel" - 1));
7292 }
7293 BFD_ASSERT (sec != NULL);
7294 (*hdrpp)->sh_link = elf_section_data (sec)->this_idx;
7295 break;
7296
7297 }
7298 }
7299 }
7300 \f
7301 /* When creating an IRIX5 executable, we need REGINFO and RTPROC
7302 segments. */
7303
7304 int
7305 _bfd_mips_elf_additional_program_headers (bfd *abfd)
7306 {
7307 asection *s;
7308 int ret = 0;
7309
7310 /* See if we need a PT_MIPS_REGINFO segment. */
7311 s = bfd_get_section_by_name (abfd, ".reginfo");
7312 if (s && (s->flags & SEC_LOAD))
7313 ++ret;
7314
7315 /* See if we need a PT_MIPS_OPTIONS segment. */
7316 if (IRIX_COMPAT (abfd) == ict_irix6
7317 && bfd_get_section_by_name (abfd,
7318 MIPS_ELF_OPTIONS_SECTION_NAME (abfd)))
7319 ++ret;
7320
7321 /* See if we need a PT_MIPS_RTPROC segment. */
7322 if (IRIX_COMPAT (abfd) == ict_irix5
7323 && bfd_get_section_by_name (abfd, ".dynamic")
7324 && bfd_get_section_by_name (abfd, ".mdebug"))
7325 ++ret;
7326
7327 return ret;
7328 }
7329
7330 /* Modify the segment map for an IRIX5 executable. */
7331
7332 bfd_boolean
7333 _bfd_mips_elf_modify_segment_map (bfd *abfd,
7334 struct bfd_link_info *info ATTRIBUTE_UNUSED)
7335 {
7336 asection *s;
7337 struct elf_segment_map *m, **pm;
7338 bfd_size_type amt;
7339
7340 /* If there is a .reginfo section, we need a PT_MIPS_REGINFO
7341 segment. */
7342 s = bfd_get_section_by_name (abfd, ".reginfo");
7343 if (s != NULL && (s->flags & SEC_LOAD) != 0)
7344 {
7345 for (m = elf_tdata (abfd)->segment_map; m != NULL; m = m->next)
7346 if (m->p_type == PT_MIPS_REGINFO)
7347 break;
7348 if (m == NULL)
7349 {
7350 amt = sizeof *m;
7351 m = bfd_zalloc (abfd, amt);
7352 if (m == NULL)
7353 return FALSE;
7354
7355 m->p_type = PT_MIPS_REGINFO;
7356 m->count = 1;
7357 m->sections[0] = s;
7358
7359 /* We want to put it after the PHDR and INTERP segments. */
7360 pm = &elf_tdata (abfd)->segment_map;
7361 while (*pm != NULL
7362 && ((*pm)->p_type == PT_PHDR
7363 || (*pm)->p_type == PT_INTERP))
7364 pm = &(*pm)->next;
7365
7366 m->next = *pm;
7367 *pm = m;
7368 }
7369 }
7370
7371 /* For IRIX 6, we don't have .mdebug sections, nor does anything but
7372 .dynamic end up in PT_DYNAMIC. However, we do have to insert a
7373 PT_MIPS_OPTIONS segment immediately following the program header
7374 table. */
7375 if (NEWABI_P (abfd)
7376 /* On non-IRIX6 new abi, we'll have already created a segment
7377 for this section, so don't create another. I'm not sure this
7378 is not also the case for IRIX 6, but I can't test it right
7379 now. */
7380 && IRIX_COMPAT (abfd) == ict_irix6)
7381 {
7382 for (s = abfd->sections; s; s = s->next)
7383 if (elf_section_data (s)->this_hdr.sh_type == SHT_MIPS_OPTIONS)
7384 break;
7385
7386 if (s)
7387 {
7388 struct elf_segment_map *options_segment;
7389
7390 pm = &elf_tdata (abfd)->segment_map;
7391 while (*pm != NULL
7392 && ((*pm)->p_type == PT_PHDR
7393 || (*pm)->p_type == PT_INTERP))
7394 pm = &(*pm)->next;
7395
7396 amt = sizeof (struct elf_segment_map);
7397 options_segment = bfd_zalloc (abfd, amt);
7398 options_segment->next = *pm;
7399 options_segment->p_type = PT_MIPS_OPTIONS;
7400 options_segment->p_flags = PF_R;
7401 options_segment->p_flags_valid = TRUE;
7402 options_segment->count = 1;
7403 options_segment->sections[0] = s;
7404 *pm = options_segment;
7405 }
7406 }
7407 else
7408 {
7409 if (IRIX_COMPAT (abfd) == ict_irix5)
7410 {
7411 /* If there are .dynamic and .mdebug sections, we make a room
7412 for the RTPROC header. FIXME: Rewrite without section names. */
7413 if (bfd_get_section_by_name (abfd, ".interp") == NULL
7414 && bfd_get_section_by_name (abfd, ".dynamic") != NULL
7415 && bfd_get_section_by_name (abfd, ".mdebug") != NULL)
7416 {
7417 for (m = elf_tdata (abfd)->segment_map; m != NULL; m = m->next)
7418 if (m->p_type == PT_MIPS_RTPROC)
7419 break;
7420 if (m == NULL)
7421 {
7422 amt = sizeof *m;
7423 m = bfd_zalloc (abfd, amt);
7424 if (m == NULL)
7425 return FALSE;
7426
7427 m->p_type = PT_MIPS_RTPROC;
7428
7429 s = bfd_get_section_by_name (abfd, ".rtproc");
7430 if (s == NULL)
7431 {
7432 m->count = 0;
7433 m->p_flags = 0;
7434 m->p_flags_valid = 1;
7435 }
7436 else
7437 {
7438 m->count = 1;
7439 m->sections[0] = s;
7440 }
7441
7442 /* We want to put it after the DYNAMIC segment. */
7443 pm = &elf_tdata (abfd)->segment_map;
7444 while (*pm != NULL && (*pm)->p_type != PT_DYNAMIC)
7445 pm = &(*pm)->next;
7446 if (*pm != NULL)
7447 pm = &(*pm)->next;
7448
7449 m->next = *pm;
7450 *pm = m;
7451 }
7452 }
7453 }
7454 /* On IRIX5, the PT_DYNAMIC segment includes the .dynamic,
7455 .dynstr, .dynsym, and .hash sections, and everything in
7456 between. */
7457 for (pm = &elf_tdata (abfd)->segment_map; *pm != NULL;
7458 pm = &(*pm)->next)
7459 if ((*pm)->p_type == PT_DYNAMIC)
7460 break;
7461 m = *pm;
7462 if (m != NULL && IRIX_COMPAT (abfd) == ict_none)
7463 {
7464 /* For a normal mips executable the permissions for the PT_DYNAMIC
7465 segment are read, write and execute. We do that here since
7466 the code in elf.c sets only the read permission. This matters
7467 sometimes for the dynamic linker. */
7468 if (bfd_get_section_by_name (abfd, ".dynamic") != NULL)
7469 {
7470 m->p_flags = PF_R | PF_W | PF_X;
7471 m->p_flags_valid = 1;
7472 }
7473 }
7474 if (m != NULL
7475 && m->count == 1 && strcmp (m->sections[0]->name, ".dynamic") == 0)
7476 {
7477 static const char *sec_names[] =
7478 {
7479 ".dynamic", ".dynstr", ".dynsym", ".hash"
7480 };
7481 bfd_vma low, high;
7482 unsigned int i, c;
7483 struct elf_segment_map *n;
7484
7485 low = ~(bfd_vma) 0;
7486 high = 0;
7487 for (i = 0; i < sizeof sec_names / sizeof sec_names[0]; i++)
7488 {
7489 s = bfd_get_section_by_name (abfd, sec_names[i]);
7490 if (s != NULL && (s->flags & SEC_LOAD) != 0)
7491 {
7492 bfd_size_type sz;
7493
7494 if (low > s->vma)
7495 low = s->vma;
7496 sz = s->_cooked_size;
7497 if (sz == 0)
7498 sz = s->_raw_size;
7499 if (high < s->vma + sz)
7500 high = s->vma + sz;
7501 }
7502 }
7503
7504 c = 0;
7505 for (s = abfd->sections; s != NULL; s = s->next)
7506 if ((s->flags & SEC_LOAD) != 0
7507 && s->vma >= low
7508 && ((s->vma
7509 + (s->_cooked_size !=
7510 0 ? s->_cooked_size : s->_raw_size)) <= high))
7511 ++c;
7512
7513 amt = sizeof *n + (bfd_size_type) (c - 1) * sizeof (asection *);
7514 n = bfd_zalloc (abfd, amt);
7515 if (n == NULL)
7516 return FALSE;
7517 *n = *m;
7518 n->count = c;
7519
7520 i = 0;
7521 for (s = abfd->sections; s != NULL; s = s->next)
7522 {
7523 if ((s->flags & SEC_LOAD) != 0
7524 && s->vma >= low
7525 && ((s->vma
7526 + (s->_cooked_size != 0 ?
7527 s->_cooked_size : s->_raw_size)) <= high))
7528 {
7529 n->sections[i] = s;
7530 ++i;
7531 }
7532 }
7533
7534 *pm = n;
7535 }
7536 }
7537
7538 return TRUE;
7539 }
7540 \f
7541 /* Return the section that should be marked against GC for a given
7542 relocation. */
7543
7544 asection *
7545 _bfd_mips_elf_gc_mark_hook (asection *sec,
7546 struct bfd_link_info *info ATTRIBUTE_UNUSED,
7547 Elf_Internal_Rela *rel,
7548 struct elf_link_hash_entry *h,
7549 Elf_Internal_Sym *sym)
7550 {
7551 /* ??? Do mips16 stub sections need to be handled special? */
7552
7553 if (h != NULL)
7554 {
7555 switch (ELF_R_TYPE (sec->owner, rel->r_info))
7556 {
7557 case R_MIPS_GNU_VTINHERIT:
7558 case R_MIPS_GNU_VTENTRY:
7559 break;
7560
7561 default:
7562 switch (h->root.type)
7563 {
7564 case bfd_link_hash_defined:
7565 case bfd_link_hash_defweak:
7566 return h->root.u.def.section;
7567
7568 case bfd_link_hash_common:
7569 return h->root.u.c.p->section;
7570
7571 default:
7572 break;
7573 }
7574 }
7575 }
7576 else
7577 return bfd_section_from_elf_index (sec->owner, sym->st_shndx);
7578
7579 return NULL;
7580 }
7581
7582 /* Update the got entry reference counts for the section being removed. */
7583
7584 bfd_boolean
7585 _bfd_mips_elf_gc_sweep_hook (bfd *abfd ATTRIBUTE_UNUSED,
7586 struct bfd_link_info *info ATTRIBUTE_UNUSED,
7587 asection *sec ATTRIBUTE_UNUSED,
7588 const Elf_Internal_Rela *relocs ATTRIBUTE_UNUSED)
7589 {
7590 #if 0
7591 Elf_Internal_Shdr *symtab_hdr;
7592 struct elf_link_hash_entry **sym_hashes;
7593 bfd_signed_vma *local_got_refcounts;
7594 const Elf_Internal_Rela *rel, *relend;
7595 unsigned long r_symndx;
7596 struct elf_link_hash_entry *h;
7597
7598 symtab_hdr = &elf_tdata (abfd)->symtab_hdr;
7599 sym_hashes = elf_sym_hashes (abfd);
7600 local_got_refcounts = elf_local_got_refcounts (abfd);
7601
7602 relend = relocs + sec->reloc_count;
7603 for (rel = relocs; rel < relend; rel++)
7604 switch (ELF_R_TYPE (abfd, rel->r_info))
7605 {
7606 case R_MIPS_GOT16:
7607 case R_MIPS_CALL16:
7608 case R_MIPS_CALL_HI16:
7609 case R_MIPS_CALL_LO16:
7610 case R_MIPS_GOT_HI16:
7611 case R_MIPS_GOT_LO16:
7612 case R_MIPS_GOT_DISP:
7613 case R_MIPS_GOT_PAGE:
7614 case R_MIPS_GOT_OFST:
7615 /* ??? It would seem that the existing MIPS code does no sort
7616 of reference counting or whatnot on its GOT and PLT entries,
7617 so it is not possible to garbage collect them at this time. */
7618 break;
7619
7620 default:
7621 break;
7622 }
7623 #endif
7624
7625 return TRUE;
7626 }
7627 \f
7628 /* Copy data from a MIPS ELF indirect symbol to its direct symbol,
7629 hiding the old indirect symbol. Process additional relocation
7630 information. Also called for weakdefs, in which case we just let
7631 _bfd_elf_link_hash_copy_indirect copy the flags for us. */
7632
7633 void
7634 _bfd_mips_elf_copy_indirect_symbol (const struct elf_backend_data *bed,
7635 struct elf_link_hash_entry *dir,
7636 struct elf_link_hash_entry *ind)
7637 {
7638 struct mips_elf_link_hash_entry *dirmips, *indmips;
7639
7640 _bfd_elf_link_hash_copy_indirect (bed, dir, ind);
7641
7642 if (ind->root.type != bfd_link_hash_indirect)
7643 return;
7644
7645 dirmips = (struct mips_elf_link_hash_entry *) dir;
7646 indmips = (struct mips_elf_link_hash_entry *) ind;
7647 dirmips->possibly_dynamic_relocs += indmips->possibly_dynamic_relocs;
7648 if (indmips->readonly_reloc)
7649 dirmips->readonly_reloc = TRUE;
7650 if (indmips->no_fn_stub)
7651 dirmips->no_fn_stub = TRUE;
7652 }
7653
7654 void
7655 _bfd_mips_elf_hide_symbol (struct bfd_link_info *info,
7656 struct elf_link_hash_entry *entry,
7657 bfd_boolean force_local)
7658 {
7659 bfd *dynobj;
7660 asection *got;
7661 struct mips_got_info *g;
7662 struct mips_elf_link_hash_entry *h;
7663
7664 h = (struct mips_elf_link_hash_entry *) entry;
7665 if (h->forced_local)
7666 return;
7667 h->forced_local = force_local;
7668
7669 dynobj = elf_hash_table (info)->dynobj;
7670 if (dynobj != NULL && force_local)
7671 {
7672 got = mips_elf_got_section (dynobj, FALSE);
7673 g = mips_elf_section_data (got)->u.got_info;
7674
7675 if (g->next)
7676 {
7677 struct mips_got_entry e;
7678 struct mips_got_info *gg = g;
7679
7680 /* Since we're turning what used to be a global symbol into a
7681 local one, bump up the number of local entries of each GOT
7682 that had an entry for it. This will automatically decrease
7683 the number of global entries, since global_gotno is actually
7684 the upper limit of global entries. */
7685 e.abfd = dynobj;
7686 e.symndx = -1;
7687 e.d.h = h;
7688
7689 for (g = g->next; g != gg; g = g->next)
7690 if (htab_find (g->got_entries, &e))
7691 {
7692 BFD_ASSERT (g->global_gotno > 0);
7693 g->local_gotno++;
7694 g->global_gotno--;
7695 }
7696
7697 /* If this was a global symbol forced into the primary GOT, we
7698 no longer need an entry for it. We can't release the entry
7699 at this point, but we must at least stop counting it as one
7700 of the symbols that required a forced got entry. */
7701 if (h->root.got.offset == 2)
7702 {
7703 BFD_ASSERT (gg->assigned_gotno > 0);
7704 gg->assigned_gotno--;
7705 }
7706 }
7707 else if (g->global_gotno == 0 && g->global_gotsym == NULL)
7708 /* If we haven't got through GOT allocation yet, just bump up the
7709 number of local entries, as this symbol won't be counted as
7710 global. */
7711 g->local_gotno++;
7712 else if (h->root.got.offset == 1)
7713 {
7714 /* If we're past non-multi-GOT allocation and this symbol had
7715 been marked for a global got entry, give it a local entry
7716 instead. */
7717 BFD_ASSERT (g->global_gotno > 0);
7718 g->local_gotno++;
7719 g->global_gotno--;
7720 }
7721 }
7722
7723 _bfd_elf_link_hash_hide_symbol (info, &h->root, force_local);
7724 }
7725 \f
7726 #define PDR_SIZE 32
7727
7728 bfd_boolean
7729 _bfd_mips_elf_discard_info (bfd *abfd, struct elf_reloc_cookie *cookie,
7730 struct bfd_link_info *info)
7731 {
7732 asection *o;
7733 bfd_boolean ret = FALSE;
7734 unsigned char *tdata;
7735 size_t i, skip;
7736
7737 o = bfd_get_section_by_name (abfd, ".pdr");
7738 if (! o)
7739 return FALSE;
7740 if (o->_raw_size == 0)
7741 return FALSE;
7742 if (o->_raw_size % PDR_SIZE != 0)
7743 return FALSE;
7744 if (o->output_section != NULL
7745 && bfd_is_abs_section (o->output_section))
7746 return FALSE;
7747
7748 tdata = bfd_zmalloc (o->_raw_size / PDR_SIZE);
7749 if (! tdata)
7750 return FALSE;
7751
7752 cookie->rels = _bfd_elf_link_read_relocs (abfd, o, NULL, NULL,
7753 info->keep_memory);
7754 if (!cookie->rels)
7755 {
7756 free (tdata);
7757 return FALSE;
7758 }
7759
7760 cookie->rel = cookie->rels;
7761 cookie->relend = cookie->rels + o->reloc_count;
7762
7763 for (i = 0, skip = 0; i < o->_raw_size / PDR_SIZE; i ++)
7764 {
7765 if (MNAME(abfd,_bfd_elf,reloc_symbol_deleted_p) (i * PDR_SIZE, cookie))
7766 {
7767 tdata[i] = 1;
7768 skip ++;
7769 }
7770 }
7771
7772 if (skip != 0)
7773 {
7774 mips_elf_section_data (o)->u.tdata = tdata;
7775 o->_cooked_size = o->_raw_size - skip * PDR_SIZE;
7776 ret = TRUE;
7777 }
7778 else
7779 free (tdata);
7780
7781 if (! info->keep_memory)
7782 free (cookie->rels);
7783
7784 return ret;
7785 }
7786
7787 bfd_boolean
7788 _bfd_mips_elf_ignore_discarded_relocs (asection *sec)
7789 {
7790 if (strcmp (sec->name, ".pdr") == 0)
7791 return TRUE;
7792 return FALSE;
7793 }
7794
7795 bfd_boolean
7796 _bfd_mips_elf_write_section (bfd *output_bfd, asection *sec,
7797 bfd_byte *contents)
7798 {
7799 bfd_byte *to, *from, *end;
7800 int i;
7801
7802 if (strcmp (sec->name, ".pdr") != 0)
7803 return FALSE;
7804
7805 if (mips_elf_section_data (sec)->u.tdata == NULL)
7806 return FALSE;
7807
7808 to = contents;
7809 end = contents + sec->_raw_size;
7810 for (from = contents, i = 0;
7811 from < end;
7812 from += PDR_SIZE, i++)
7813 {
7814 if ((mips_elf_section_data (sec)->u.tdata)[i] == 1)
7815 continue;
7816 if (to != from)
7817 memcpy (to, from, PDR_SIZE);
7818 to += PDR_SIZE;
7819 }
7820 bfd_set_section_contents (output_bfd, sec->output_section, contents,
7821 sec->output_offset, sec->_cooked_size);
7822 return TRUE;
7823 }
7824 \f
7825 /* MIPS ELF uses a special find_nearest_line routine in order the
7826 handle the ECOFF debugging information. */
7827
7828 struct mips_elf_find_line
7829 {
7830 struct ecoff_debug_info d;
7831 struct ecoff_find_line i;
7832 };
7833
7834 bfd_boolean
7835 _bfd_mips_elf_find_nearest_line (bfd *abfd, asection *section,
7836 asymbol **symbols, bfd_vma offset,
7837 const char **filename_ptr,
7838 const char **functionname_ptr,
7839 unsigned int *line_ptr)
7840 {
7841 asection *msec;
7842
7843 if (_bfd_dwarf1_find_nearest_line (abfd, section, symbols, offset,
7844 filename_ptr, functionname_ptr,
7845 line_ptr))
7846 return TRUE;
7847
7848 if (_bfd_dwarf2_find_nearest_line (abfd, section, symbols, offset,
7849 filename_ptr, functionname_ptr,
7850 line_ptr, ABI_64_P (abfd) ? 8 : 0,
7851 &elf_tdata (abfd)->dwarf2_find_line_info))
7852 return TRUE;
7853
7854 msec = bfd_get_section_by_name (abfd, ".mdebug");
7855 if (msec != NULL)
7856 {
7857 flagword origflags;
7858 struct mips_elf_find_line *fi;
7859 const struct ecoff_debug_swap * const swap =
7860 get_elf_backend_data (abfd)->elf_backend_ecoff_debug_swap;
7861
7862 /* If we are called during a link, mips_elf_final_link may have
7863 cleared the SEC_HAS_CONTENTS field. We force it back on here
7864 if appropriate (which it normally will be). */
7865 origflags = msec->flags;
7866 if (elf_section_data (msec)->this_hdr.sh_type != SHT_NOBITS)
7867 msec->flags |= SEC_HAS_CONTENTS;
7868
7869 fi = elf_tdata (abfd)->find_line_info;
7870 if (fi == NULL)
7871 {
7872 bfd_size_type external_fdr_size;
7873 char *fraw_src;
7874 char *fraw_end;
7875 struct fdr *fdr_ptr;
7876 bfd_size_type amt = sizeof (struct mips_elf_find_line);
7877
7878 fi = bfd_zalloc (abfd, amt);
7879 if (fi == NULL)
7880 {
7881 msec->flags = origflags;
7882 return FALSE;
7883 }
7884
7885 if (! _bfd_mips_elf_read_ecoff_info (abfd, msec, &fi->d))
7886 {
7887 msec->flags = origflags;
7888 return FALSE;
7889 }
7890
7891 /* Swap in the FDR information. */
7892 amt = fi->d.symbolic_header.ifdMax * sizeof (struct fdr);
7893 fi->d.fdr = bfd_alloc (abfd, amt);
7894 if (fi->d.fdr == NULL)
7895 {
7896 msec->flags = origflags;
7897 return FALSE;
7898 }
7899 external_fdr_size = swap->external_fdr_size;
7900 fdr_ptr = fi->d.fdr;
7901 fraw_src = (char *) fi->d.external_fdr;
7902 fraw_end = (fraw_src
7903 + fi->d.symbolic_header.ifdMax * external_fdr_size);
7904 for (; fraw_src < fraw_end; fraw_src += external_fdr_size, fdr_ptr++)
7905 (*swap->swap_fdr_in) (abfd, fraw_src, fdr_ptr);
7906
7907 elf_tdata (abfd)->find_line_info = fi;
7908
7909 /* Note that we don't bother to ever free this information.
7910 find_nearest_line is either called all the time, as in
7911 objdump -l, so the information should be saved, or it is
7912 rarely called, as in ld error messages, so the memory
7913 wasted is unimportant. Still, it would probably be a
7914 good idea for free_cached_info to throw it away. */
7915 }
7916
7917 if (_bfd_ecoff_locate_line (abfd, section, offset, &fi->d, swap,
7918 &fi->i, filename_ptr, functionname_ptr,
7919 line_ptr))
7920 {
7921 msec->flags = origflags;
7922 return TRUE;
7923 }
7924
7925 msec->flags = origflags;
7926 }
7927
7928 /* Fall back on the generic ELF find_nearest_line routine. */
7929
7930 return _bfd_elf_find_nearest_line (abfd, section, symbols, offset,
7931 filename_ptr, functionname_ptr,
7932 line_ptr);
7933 }
7934 \f
7935 /* When are writing out the .options or .MIPS.options section,
7936 remember the bytes we are writing out, so that we can install the
7937 GP value in the section_processing routine. */
7938
7939 bfd_boolean
7940 _bfd_mips_elf_set_section_contents (bfd *abfd, sec_ptr section,
7941 const void *location,
7942 file_ptr offset, bfd_size_type count)
7943 {
7944 if (strcmp (section->name, MIPS_ELF_OPTIONS_SECTION_NAME (abfd)) == 0)
7945 {
7946 bfd_byte *c;
7947
7948 if (elf_section_data (section) == NULL)
7949 {
7950 bfd_size_type amt = sizeof (struct bfd_elf_section_data);
7951 section->used_by_bfd = bfd_zalloc (abfd, amt);
7952 if (elf_section_data (section) == NULL)
7953 return FALSE;
7954 }
7955 c = mips_elf_section_data (section)->u.tdata;
7956 if (c == NULL)
7957 {
7958 bfd_size_type size;
7959
7960 if (section->_cooked_size != 0)
7961 size = section->_cooked_size;
7962 else
7963 size = section->_raw_size;
7964 c = bfd_zalloc (abfd, size);
7965 if (c == NULL)
7966 return FALSE;
7967 mips_elf_section_data (section)->u.tdata = c;
7968 }
7969
7970 memcpy (c + offset, location, count);
7971 }
7972
7973 return _bfd_elf_set_section_contents (abfd, section, location, offset,
7974 count);
7975 }
7976
7977 /* This is almost identical to bfd_generic_get_... except that some
7978 MIPS relocations need to be handled specially. Sigh. */
7979
7980 bfd_byte *
7981 _bfd_elf_mips_get_relocated_section_contents
7982 (bfd *abfd,
7983 struct bfd_link_info *link_info,
7984 struct bfd_link_order *link_order,
7985 bfd_byte *data,
7986 bfd_boolean relocatable,
7987 asymbol **symbols)
7988 {
7989 /* Get enough memory to hold the stuff */
7990 bfd *input_bfd = link_order->u.indirect.section->owner;
7991 asection *input_section = link_order->u.indirect.section;
7992
7993 long reloc_size = bfd_get_reloc_upper_bound (input_bfd, input_section);
7994 arelent **reloc_vector = NULL;
7995 long reloc_count;
7996
7997 if (reloc_size < 0)
7998 goto error_return;
7999
8000 reloc_vector = bfd_malloc (reloc_size);
8001 if (reloc_vector == NULL && reloc_size != 0)
8002 goto error_return;
8003
8004 /* read in the section */
8005 if (!bfd_get_section_contents (input_bfd, input_section, data, 0,
8006 input_section->_raw_size))
8007 goto error_return;
8008
8009 /* We're not relaxing the section, so just copy the size info */
8010 input_section->_cooked_size = input_section->_raw_size;
8011 input_section->reloc_done = TRUE;
8012
8013 reloc_count = bfd_canonicalize_reloc (input_bfd,
8014 input_section,
8015 reloc_vector,
8016 symbols);
8017 if (reloc_count < 0)
8018 goto error_return;
8019
8020 if (reloc_count > 0)
8021 {
8022 arelent **parent;
8023 /* for mips */
8024 int gp_found;
8025 bfd_vma gp = 0x12345678; /* initialize just to shut gcc up */
8026
8027 {
8028 struct bfd_hash_entry *h;
8029 struct bfd_link_hash_entry *lh;
8030 /* Skip all this stuff if we aren't mixing formats. */
8031 if (abfd && input_bfd
8032 && abfd->xvec == input_bfd->xvec)
8033 lh = 0;
8034 else
8035 {
8036 h = bfd_hash_lookup (&link_info->hash->table, "_gp", FALSE, FALSE);
8037 lh = (struct bfd_link_hash_entry *) h;
8038 }
8039 lookup:
8040 if (lh)
8041 {
8042 switch (lh->type)
8043 {
8044 case bfd_link_hash_undefined:
8045 case bfd_link_hash_undefweak:
8046 case bfd_link_hash_common:
8047 gp_found = 0;
8048 break;
8049 case bfd_link_hash_defined:
8050 case bfd_link_hash_defweak:
8051 gp_found = 1;
8052 gp = lh->u.def.value;
8053 break;
8054 case bfd_link_hash_indirect:
8055 case bfd_link_hash_warning:
8056 lh = lh->u.i.link;
8057 /* @@FIXME ignoring warning for now */
8058 goto lookup;
8059 case bfd_link_hash_new:
8060 default:
8061 abort ();
8062 }
8063 }
8064 else
8065 gp_found = 0;
8066 }
8067 /* end mips */
8068 for (parent = reloc_vector; *parent != NULL; parent++)
8069 {
8070 char *error_message = NULL;
8071 bfd_reloc_status_type r;
8072
8073 /* Specific to MIPS: Deal with relocation types that require
8074 knowing the gp of the output bfd. */
8075 asymbol *sym = *(*parent)->sym_ptr_ptr;
8076 if (bfd_is_abs_section (sym->section) && abfd)
8077 {
8078 /* The special_function wouldn't get called anyway. */
8079 }
8080 else if (!gp_found)
8081 {
8082 /* The gp isn't there; let the special function code
8083 fall over on its own. */
8084 }
8085 else if ((*parent)->howto->special_function
8086 == _bfd_mips_elf32_gprel16_reloc)
8087 {
8088 /* bypass special_function call */
8089 r = _bfd_mips_elf_gprel16_with_gp (input_bfd, sym, *parent,
8090 input_section, relocatable,
8091 data, gp);
8092 goto skip_bfd_perform_relocation;
8093 }
8094 /* end mips specific stuff */
8095
8096 r = bfd_perform_relocation (input_bfd, *parent, data, input_section,
8097 relocatable ? abfd : NULL,
8098 &error_message);
8099 skip_bfd_perform_relocation:
8100
8101 if (relocatable)
8102 {
8103 asection *os = input_section->output_section;
8104
8105 /* A partial link, so keep the relocs */
8106 os->orelocation[os->reloc_count] = *parent;
8107 os->reloc_count++;
8108 }
8109
8110 if (r != bfd_reloc_ok)
8111 {
8112 switch (r)
8113 {
8114 case bfd_reloc_undefined:
8115 if (!((*link_info->callbacks->undefined_symbol)
8116 (link_info, bfd_asymbol_name (*(*parent)->sym_ptr_ptr),
8117 input_bfd, input_section, (*parent)->address,
8118 TRUE)))
8119 goto error_return;
8120 break;
8121 case bfd_reloc_dangerous:
8122 BFD_ASSERT (error_message != NULL);
8123 if (!((*link_info->callbacks->reloc_dangerous)
8124 (link_info, error_message, input_bfd, input_section,
8125 (*parent)->address)))
8126 goto error_return;
8127 break;
8128 case bfd_reloc_overflow:
8129 if (!((*link_info->callbacks->reloc_overflow)
8130 (link_info, bfd_asymbol_name (*(*parent)->sym_ptr_ptr),
8131 (*parent)->howto->name, (*parent)->addend,
8132 input_bfd, input_section, (*parent)->address)))
8133 goto error_return;
8134 break;
8135 case bfd_reloc_outofrange:
8136 default:
8137 abort ();
8138 break;
8139 }
8140
8141 }
8142 }
8143 }
8144 if (reloc_vector != NULL)
8145 free (reloc_vector);
8146 return data;
8147
8148 error_return:
8149 if (reloc_vector != NULL)
8150 free (reloc_vector);
8151 return NULL;
8152 }
8153 \f
8154 /* Create a MIPS ELF linker hash table. */
8155
8156 struct bfd_link_hash_table *
8157 _bfd_mips_elf_link_hash_table_create (bfd *abfd)
8158 {
8159 struct mips_elf_link_hash_table *ret;
8160 bfd_size_type amt = sizeof (struct mips_elf_link_hash_table);
8161
8162 ret = bfd_malloc (amt);
8163 if (ret == NULL)
8164 return NULL;
8165
8166 if (! _bfd_elf_link_hash_table_init (&ret->root, abfd,
8167 mips_elf_link_hash_newfunc))
8168 {
8169 free (ret);
8170 return NULL;
8171 }
8172
8173 #if 0
8174 /* We no longer use this. */
8175 for (i = 0; i < SIZEOF_MIPS_DYNSYM_SECNAMES; i++)
8176 ret->dynsym_sec_strindex[i] = (bfd_size_type) -1;
8177 #endif
8178 ret->procedure_count = 0;
8179 ret->compact_rel_size = 0;
8180 ret->use_rld_obj_head = FALSE;
8181 ret->rld_value = 0;
8182 ret->mips16_stubs_seen = FALSE;
8183
8184 return &ret->root.root;
8185 }
8186 \f
8187 /* We need to use a special link routine to handle the .reginfo and
8188 the .mdebug sections. We need to merge all instances of these
8189 sections together, not write them all out sequentially. */
8190
8191 bfd_boolean
8192 _bfd_mips_elf_final_link (bfd *abfd, struct bfd_link_info *info)
8193 {
8194 asection **secpp;
8195 asection *o;
8196 struct bfd_link_order *p;
8197 asection *reginfo_sec, *mdebug_sec, *gptab_data_sec, *gptab_bss_sec;
8198 asection *rtproc_sec;
8199 Elf32_RegInfo reginfo;
8200 struct ecoff_debug_info debug;
8201 const struct ecoff_debug_swap *swap
8202 = get_elf_backend_data (abfd)->elf_backend_ecoff_debug_swap;
8203 HDRR *symhdr = &debug.symbolic_header;
8204 void *mdebug_handle = NULL;
8205 asection *s;
8206 EXTR esym;
8207 unsigned int i;
8208 bfd_size_type amt;
8209
8210 static const char * const secname[] =
8211 {
8212 ".text", ".init", ".fini", ".data",
8213 ".rodata", ".sdata", ".sbss", ".bss"
8214 };
8215 static const int sc[] =
8216 {
8217 scText, scInit, scFini, scData,
8218 scRData, scSData, scSBss, scBss
8219 };
8220
8221 /* We'd carefully arranged the dynamic symbol indices, and then the
8222 generic size_dynamic_sections renumbered them out from under us.
8223 Rather than trying somehow to prevent the renumbering, just do
8224 the sort again. */
8225 if (elf_hash_table (info)->dynamic_sections_created)
8226 {
8227 bfd *dynobj;
8228 asection *got;
8229 struct mips_got_info *g;
8230
8231 /* When we resort, we must tell mips_elf_sort_hash_table what
8232 the lowest index it may use is. That's the number of section
8233 symbols we're going to add. The generic ELF linker only
8234 adds these symbols when building a shared object. Note that
8235 we count the sections after (possibly) removing the .options
8236 section above. */
8237 if (! mips_elf_sort_hash_table (info, (info->shared
8238 ? bfd_count_sections (abfd) + 1
8239 : 1)))
8240 return FALSE;
8241
8242 /* Make sure we didn't grow the global .got region. */
8243 dynobj = elf_hash_table (info)->dynobj;
8244 got = mips_elf_got_section (dynobj, FALSE);
8245 g = mips_elf_section_data (got)->u.got_info;
8246
8247 if (g->global_gotsym != NULL)
8248 BFD_ASSERT ((elf_hash_table (info)->dynsymcount
8249 - g->global_gotsym->dynindx)
8250 <= g->global_gotno);
8251 }
8252
8253 #if 0
8254 /* We want to set the GP value for ld -r. */
8255 /* On IRIX5, we omit the .options section. On IRIX6, however, we
8256 include it, even though we don't process it quite right. (Some
8257 entries are supposed to be merged.) Empirically, we seem to be
8258 better off including it then not. */
8259 if (IRIX_COMPAT (abfd) == ict_irix5 || IRIX_COMPAT (abfd) == ict_none)
8260 for (secpp = &abfd->sections; *secpp != NULL; secpp = &(*secpp)->next)
8261 {
8262 if (strcmp ((*secpp)->name, MIPS_ELF_OPTIONS_SECTION_NAME (abfd)) == 0)
8263 {
8264 for (p = (*secpp)->link_order_head; p != NULL; p = p->next)
8265 if (p->type == bfd_indirect_link_order)
8266 p->u.indirect.section->flags &= ~SEC_HAS_CONTENTS;
8267 (*secpp)->link_order_head = NULL;
8268 bfd_section_list_remove (abfd, secpp);
8269 --abfd->section_count;
8270
8271 break;
8272 }
8273 }
8274
8275 /* We include .MIPS.options, even though we don't process it quite right.
8276 (Some entries are supposed to be merged.) At IRIX6 empirically we seem
8277 to be better off including it than not. */
8278 for (secpp = &abfd->sections; *secpp != NULL; secpp = &(*secpp)->next)
8279 {
8280 if (strcmp ((*secpp)->name, ".MIPS.options") == 0)
8281 {
8282 for (p = (*secpp)->link_order_head; p != NULL; p = p->next)
8283 if (p->type == bfd_indirect_link_order)
8284 p->u.indirect.section->flags &=~ SEC_HAS_CONTENTS;
8285 (*secpp)->link_order_head = NULL;
8286 bfd_section_list_remove (abfd, secpp);
8287 --abfd->section_count;
8288
8289 break;
8290 }
8291 }
8292 #endif
8293
8294 /* Get a value for the GP register. */
8295 if (elf_gp (abfd) == 0)
8296 {
8297 struct bfd_link_hash_entry *h;
8298
8299 h = bfd_link_hash_lookup (info->hash, "_gp", FALSE, FALSE, TRUE);
8300 if (h != NULL && h->type == bfd_link_hash_defined)
8301 elf_gp (abfd) = (h->u.def.value
8302 + h->u.def.section->output_section->vma
8303 + h->u.def.section->output_offset);
8304 else if (info->relocatable)
8305 {
8306 bfd_vma lo = MINUS_ONE;
8307
8308 /* Find the GP-relative section with the lowest offset. */
8309 for (o = abfd->sections; o != NULL; o = o->next)
8310 if (o->vma < lo
8311 && (elf_section_data (o)->this_hdr.sh_flags & SHF_MIPS_GPREL))
8312 lo = o->vma;
8313
8314 /* And calculate GP relative to that. */
8315 elf_gp (abfd) = lo + ELF_MIPS_GP_OFFSET (abfd);
8316 }
8317 else
8318 {
8319 /* If the relocate_section function needs to do a reloc
8320 involving the GP value, it should make a reloc_dangerous
8321 callback to warn that GP is not defined. */
8322 }
8323 }
8324
8325 /* Go through the sections and collect the .reginfo and .mdebug
8326 information. */
8327 reginfo_sec = NULL;
8328 mdebug_sec = NULL;
8329 gptab_data_sec = NULL;
8330 gptab_bss_sec = NULL;
8331 for (o = abfd->sections; o != NULL; o = o->next)
8332 {
8333 if (strcmp (o->name, ".reginfo") == 0)
8334 {
8335 memset (&reginfo, 0, sizeof reginfo);
8336
8337 /* We have found the .reginfo section in the output file.
8338 Look through all the link_orders comprising it and merge
8339 the information together. */
8340 for (p = o->link_order_head; p != NULL; p = p->next)
8341 {
8342 asection *input_section;
8343 bfd *input_bfd;
8344 Elf32_External_RegInfo ext;
8345 Elf32_RegInfo sub;
8346
8347 if (p->type != bfd_indirect_link_order)
8348 {
8349 if (p->type == bfd_data_link_order)
8350 continue;
8351 abort ();
8352 }
8353
8354 input_section = p->u.indirect.section;
8355 input_bfd = input_section->owner;
8356
8357 /* The linker emulation code has probably clobbered the
8358 size to be zero bytes. */
8359 if (input_section->_raw_size == 0)
8360 input_section->_raw_size = sizeof (Elf32_External_RegInfo);
8361
8362 if (! bfd_get_section_contents (input_bfd, input_section,
8363 &ext, 0, sizeof ext))
8364 return FALSE;
8365
8366 bfd_mips_elf32_swap_reginfo_in (input_bfd, &ext, &sub);
8367
8368 reginfo.ri_gprmask |= sub.ri_gprmask;
8369 reginfo.ri_cprmask[0] |= sub.ri_cprmask[0];
8370 reginfo.ri_cprmask[1] |= sub.ri_cprmask[1];
8371 reginfo.ri_cprmask[2] |= sub.ri_cprmask[2];
8372 reginfo.ri_cprmask[3] |= sub.ri_cprmask[3];
8373
8374 /* ri_gp_value is set by the function
8375 mips_elf32_section_processing when the section is
8376 finally written out. */
8377
8378 /* Hack: reset the SEC_HAS_CONTENTS flag so that
8379 elf_link_input_bfd ignores this section. */
8380 input_section->flags &= ~SEC_HAS_CONTENTS;
8381 }
8382
8383 /* Size has been set in _bfd_mips_elf_always_size_sections. */
8384 BFD_ASSERT(o->_raw_size == sizeof (Elf32_External_RegInfo));
8385
8386 /* Skip this section later on (I don't think this currently
8387 matters, but someday it might). */
8388 o->link_order_head = NULL;
8389
8390 reginfo_sec = o;
8391 }
8392
8393 if (strcmp (o->name, ".mdebug") == 0)
8394 {
8395 struct extsym_info einfo;
8396 bfd_vma last;
8397
8398 /* We have found the .mdebug section in the output file.
8399 Look through all the link_orders comprising it and merge
8400 the information together. */
8401 symhdr->magic = swap->sym_magic;
8402 /* FIXME: What should the version stamp be? */
8403 symhdr->vstamp = 0;
8404 symhdr->ilineMax = 0;
8405 symhdr->cbLine = 0;
8406 symhdr->idnMax = 0;
8407 symhdr->ipdMax = 0;
8408 symhdr->isymMax = 0;
8409 symhdr->ioptMax = 0;
8410 symhdr->iauxMax = 0;
8411 symhdr->issMax = 0;
8412 symhdr->issExtMax = 0;
8413 symhdr->ifdMax = 0;
8414 symhdr->crfd = 0;
8415 symhdr->iextMax = 0;
8416
8417 /* We accumulate the debugging information itself in the
8418 debug_info structure. */
8419 debug.line = NULL;
8420 debug.external_dnr = NULL;
8421 debug.external_pdr = NULL;
8422 debug.external_sym = NULL;
8423 debug.external_opt = NULL;
8424 debug.external_aux = NULL;
8425 debug.ss = NULL;
8426 debug.ssext = debug.ssext_end = NULL;
8427 debug.external_fdr = NULL;
8428 debug.external_rfd = NULL;
8429 debug.external_ext = debug.external_ext_end = NULL;
8430
8431 mdebug_handle = bfd_ecoff_debug_init (abfd, &debug, swap, info);
8432 if (mdebug_handle == NULL)
8433 return FALSE;
8434
8435 esym.jmptbl = 0;
8436 esym.cobol_main = 0;
8437 esym.weakext = 0;
8438 esym.reserved = 0;
8439 esym.ifd = ifdNil;
8440 esym.asym.iss = issNil;
8441 esym.asym.st = stLocal;
8442 esym.asym.reserved = 0;
8443 esym.asym.index = indexNil;
8444 last = 0;
8445 for (i = 0; i < sizeof (secname) / sizeof (secname[0]); i++)
8446 {
8447 esym.asym.sc = sc[i];
8448 s = bfd_get_section_by_name (abfd, secname[i]);
8449 if (s != NULL)
8450 {
8451 esym.asym.value = s->vma;
8452 last = s->vma + s->_raw_size;
8453 }
8454 else
8455 esym.asym.value = last;
8456 if (!bfd_ecoff_debug_one_external (abfd, &debug, swap,
8457 secname[i], &esym))
8458 return FALSE;
8459 }
8460
8461 for (p = o->link_order_head; p != NULL; p = p->next)
8462 {
8463 asection *input_section;
8464 bfd *input_bfd;
8465 const struct ecoff_debug_swap *input_swap;
8466 struct ecoff_debug_info input_debug;
8467 char *eraw_src;
8468 char *eraw_end;
8469
8470 if (p->type != bfd_indirect_link_order)
8471 {
8472 if (p->type == bfd_data_link_order)
8473 continue;
8474 abort ();
8475 }
8476
8477 input_section = p->u.indirect.section;
8478 input_bfd = input_section->owner;
8479
8480 if (bfd_get_flavour (input_bfd) != bfd_target_elf_flavour
8481 || (get_elf_backend_data (input_bfd)
8482 ->elf_backend_ecoff_debug_swap) == NULL)
8483 {
8484 /* I don't know what a non MIPS ELF bfd would be
8485 doing with a .mdebug section, but I don't really
8486 want to deal with it. */
8487 continue;
8488 }
8489
8490 input_swap = (get_elf_backend_data (input_bfd)
8491 ->elf_backend_ecoff_debug_swap);
8492
8493 BFD_ASSERT (p->size == input_section->_raw_size);
8494
8495 /* The ECOFF linking code expects that we have already
8496 read in the debugging information and set up an
8497 ecoff_debug_info structure, so we do that now. */
8498 if (! _bfd_mips_elf_read_ecoff_info (input_bfd, input_section,
8499 &input_debug))
8500 return FALSE;
8501
8502 if (! (bfd_ecoff_debug_accumulate
8503 (mdebug_handle, abfd, &debug, swap, input_bfd,
8504 &input_debug, input_swap, info)))
8505 return FALSE;
8506
8507 /* Loop through the external symbols. For each one with
8508 interesting information, try to find the symbol in
8509 the linker global hash table and save the information
8510 for the output external symbols. */
8511 eraw_src = input_debug.external_ext;
8512 eraw_end = (eraw_src
8513 + (input_debug.symbolic_header.iextMax
8514 * input_swap->external_ext_size));
8515 for (;
8516 eraw_src < eraw_end;
8517 eraw_src += input_swap->external_ext_size)
8518 {
8519 EXTR ext;
8520 const char *name;
8521 struct mips_elf_link_hash_entry *h;
8522
8523 (*input_swap->swap_ext_in) (input_bfd, eraw_src, &ext);
8524 if (ext.asym.sc == scNil
8525 || ext.asym.sc == scUndefined
8526 || ext.asym.sc == scSUndefined)
8527 continue;
8528
8529 name = input_debug.ssext + ext.asym.iss;
8530 h = mips_elf_link_hash_lookup (mips_elf_hash_table (info),
8531 name, FALSE, FALSE, TRUE);
8532 if (h == NULL || h->esym.ifd != -2)
8533 continue;
8534
8535 if (ext.ifd != -1)
8536 {
8537 BFD_ASSERT (ext.ifd
8538 < input_debug.symbolic_header.ifdMax);
8539 ext.ifd = input_debug.ifdmap[ext.ifd];
8540 }
8541
8542 h->esym = ext;
8543 }
8544
8545 /* Free up the information we just read. */
8546 free (input_debug.line);
8547 free (input_debug.external_dnr);
8548 free (input_debug.external_pdr);
8549 free (input_debug.external_sym);
8550 free (input_debug.external_opt);
8551 free (input_debug.external_aux);
8552 free (input_debug.ss);
8553 free (input_debug.ssext);
8554 free (input_debug.external_fdr);
8555 free (input_debug.external_rfd);
8556 free (input_debug.external_ext);
8557
8558 /* Hack: reset the SEC_HAS_CONTENTS flag so that
8559 elf_link_input_bfd ignores this section. */
8560 input_section->flags &= ~SEC_HAS_CONTENTS;
8561 }
8562
8563 if (SGI_COMPAT (abfd) && info->shared)
8564 {
8565 /* Create .rtproc section. */
8566 rtproc_sec = bfd_get_section_by_name (abfd, ".rtproc");
8567 if (rtproc_sec == NULL)
8568 {
8569 flagword flags = (SEC_HAS_CONTENTS | SEC_IN_MEMORY
8570 | SEC_LINKER_CREATED | SEC_READONLY);
8571
8572 rtproc_sec = bfd_make_section (abfd, ".rtproc");
8573 if (rtproc_sec == NULL
8574 || ! bfd_set_section_flags (abfd, rtproc_sec, flags)
8575 || ! bfd_set_section_alignment (abfd, rtproc_sec, 4))
8576 return FALSE;
8577 }
8578
8579 if (! mips_elf_create_procedure_table (mdebug_handle, abfd,
8580 info, rtproc_sec,
8581 &debug))
8582 return FALSE;
8583 }
8584
8585 /* Build the external symbol information. */
8586 einfo.abfd = abfd;
8587 einfo.info = info;
8588 einfo.debug = &debug;
8589 einfo.swap = swap;
8590 einfo.failed = FALSE;
8591 mips_elf_link_hash_traverse (mips_elf_hash_table (info),
8592 mips_elf_output_extsym, &einfo);
8593 if (einfo.failed)
8594 return FALSE;
8595
8596 /* Set the size of the .mdebug section. */
8597 o->_raw_size = bfd_ecoff_debug_size (abfd, &debug, swap);
8598
8599 /* Skip this section later on (I don't think this currently
8600 matters, but someday it might). */
8601 o->link_order_head = NULL;
8602
8603 mdebug_sec = o;
8604 }
8605
8606 if (strncmp (o->name, ".gptab.", sizeof ".gptab." - 1) == 0)
8607 {
8608 const char *subname;
8609 unsigned int c;
8610 Elf32_gptab *tab;
8611 Elf32_External_gptab *ext_tab;
8612 unsigned int j;
8613
8614 /* The .gptab.sdata and .gptab.sbss sections hold
8615 information describing how the small data area would
8616 change depending upon the -G switch. These sections
8617 not used in executables files. */
8618 if (! info->relocatable)
8619 {
8620 for (p = o->link_order_head; p != NULL; p = p->next)
8621 {
8622 asection *input_section;
8623
8624 if (p->type != bfd_indirect_link_order)
8625 {
8626 if (p->type == bfd_data_link_order)
8627 continue;
8628 abort ();
8629 }
8630
8631 input_section = p->u.indirect.section;
8632
8633 /* Hack: reset the SEC_HAS_CONTENTS flag so that
8634 elf_link_input_bfd ignores this section. */
8635 input_section->flags &= ~SEC_HAS_CONTENTS;
8636 }
8637
8638 /* Skip this section later on (I don't think this
8639 currently matters, but someday it might). */
8640 o->link_order_head = NULL;
8641
8642 /* Really remove the section. */
8643 for (secpp = &abfd->sections;
8644 *secpp != o;
8645 secpp = &(*secpp)->next)
8646 ;
8647 bfd_section_list_remove (abfd, secpp);
8648 --abfd->section_count;
8649
8650 continue;
8651 }
8652
8653 /* There is one gptab for initialized data, and one for
8654 uninitialized data. */
8655 if (strcmp (o->name, ".gptab.sdata") == 0)
8656 gptab_data_sec = o;
8657 else if (strcmp (o->name, ".gptab.sbss") == 0)
8658 gptab_bss_sec = o;
8659 else
8660 {
8661 (*_bfd_error_handler)
8662 (_("%s: illegal section name `%s'"),
8663 bfd_get_filename (abfd), o->name);
8664 bfd_set_error (bfd_error_nonrepresentable_section);
8665 return FALSE;
8666 }
8667
8668 /* The linker script always combines .gptab.data and
8669 .gptab.sdata into .gptab.sdata, and likewise for
8670 .gptab.bss and .gptab.sbss. It is possible that there is
8671 no .sdata or .sbss section in the output file, in which
8672 case we must change the name of the output section. */
8673 subname = o->name + sizeof ".gptab" - 1;
8674 if (bfd_get_section_by_name (abfd, subname) == NULL)
8675 {
8676 if (o == gptab_data_sec)
8677 o->name = ".gptab.data";
8678 else
8679 o->name = ".gptab.bss";
8680 subname = o->name + sizeof ".gptab" - 1;
8681 BFD_ASSERT (bfd_get_section_by_name (abfd, subname) != NULL);
8682 }
8683
8684 /* Set up the first entry. */
8685 c = 1;
8686 amt = c * sizeof (Elf32_gptab);
8687 tab = bfd_malloc (amt);
8688 if (tab == NULL)
8689 return FALSE;
8690 tab[0].gt_header.gt_current_g_value = elf_gp_size (abfd);
8691 tab[0].gt_header.gt_unused = 0;
8692
8693 /* Combine the input sections. */
8694 for (p = o->link_order_head; p != NULL; p = p->next)
8695 {
8696 asection *input_section;
8697 bfd *input_bfd;
8698 bfd_size_type size;
8699 unsigned long last;
8700 bfd_size_type gpentry;
8701
8702 if (p->type != bfd_indirect_link_order)
8703 {
8704 if (p->type == bfd_data_link_order)
8705 continue;
8706 abort ();
8707 }
8708
8709 input_section = p->u.indirect.section;
8710 input_bfd = input_section->owner;
8711
8712 /* Combine the gptab entries for this input section one
8713 by one. We know that the input gptab entries are
8714 sorted by ascending -G value. */
8715 size = bfd_section_size (input_bfd, input_section);
8716 last = 0;
8717 for (gpentry = sizeof (Elf32_External_gptab);
8718 gpentry < size;
8719 gpentry += sizeof (Elf32_External_gptab))
8720 {
8721 Elf32_External_gptab ext_gptab;
8722 Elf32_gptab int_gptab;
8723 unsigned long val;
8724 unsigned long add;
8725 bfd_boolean exact;
8726 unsigned int look;
8727
8728 if (! (bfd_get_section_contents
8729 (input_bfd, input_section, &ext_gptab, gpentry,
8730 sizeof (Elf32_External_gptab))))
8731 {
8732 free (tab);
8733 return FALSE;
8734 }
8735
8736 bfd_mips_elf32_swap_gptab_in (input_bfd, &ext_gptab,
8737 &int_gptab);
8738 val = int_gptab.gt_entry.gt_g_value;
8739 add = int_gptab.gt_entry.gt_bytes - last;
8740
8741 exact = FALSE;
8742 for (look = 1; look < c; look++)
8743 {
8744 if (tab[look].gt_entry.gt_g_value >= val)
8745 tab[look].gt_entry.gt_bytes += add;
8746
8747 if (tab[look].gt_entry.gt_g_value == val)
8748 exact = TRUE;
8749 }
8750
8751 if (! exact)
8752 {
8753 Elf32_gptab *new_tab;
8754 unsigned int max;
8755
8756 /* We need a new table entry. */
8757 amt = (bfd_size_type) (c + 1) * sizeof (Elf32_gptab);
8758 new_tab = bfd_realloc (tab, amt);
8759 if (new_tab == NULL)
8760 {
8761 free (tab);
8762 return FALSE;
8763 }
8764 tab = new_tab;
8765 tab[c].gt_entry.gt_g_value = val;
8766 tab[c].gt_entry.gt_bytes = add;
8767
8768 /* Merge in the size for the next smallest -G
8769 value, since that will be implied by this new
8770 value. */
8771 max = 0;
8772 for (look = 1; look < c; look++)
8773 {
8774 if (tab[look].gt_entry.gt_g_value < val
8775 && (max == 0
8776 || (tab[look].gt_entry.gt_g_value
8777 > tab[max].gt_entry.gt_g_value)))
8778 max = look;
8779 }
8780 if (max != 0)
8781 tab[c].gt_entry.gt_bytes +=
8782 tab[max].gt_entry.gt_bytes;
8783
8784 ++c;
8785 }
8786
8787 last = int_gptab.gt_entry.gt_bytes;
8788 }
8789
8790 /* Hack: reset the SEC_HAS_CONTENTS flag so that
8791 elf_link_input_bfd ignores this section. */
8792 input_section->flags &= ~SEC_HAS_CONTENTS;
8793 }
8794
8795 /* The table must be sorted by -G value. */
8796 if (c > 2)
8797 qsort (tab + 1, c - 1, sizeof (tab[0]), gptab_compare);
8798
8799 /* Swap out the table. */
8800 amt = (bfd_size_type) c * sizeof (Elf32_External_gptab);
8801 ext_tab = bfd_alloc (abfd, amt);
8802 if (ext_tab == NULL)
8803 {
8804 free (tab);
8805 return FALSE;
8806 }
8807
8808 for (j = 0; j < c; j++)
8809 bfd_mips_elf32_swap_gptab_out (abfd, tab + j, ext_tab + j);
8810 free (tab);
8811
8812 o->_raw_size = c * sizeof (Elf32_External_gptab);
8813 o->contents = (bfd_byte *) ext_tab;
8814
8815 /* Skip this section later on (I don't think this currently
8816 matters, but someday it might). */
8817 o->link_order_head = NULL;
8818 }
8819 }
8820
8821 /* Invoke the regular ELF backend linker to do all the work. */
8822 if (!MNAME(abfd,bfd_elf,bfd_final_link) (abfd, info))
8823 return FALSE;
8824
8825 /* Now write out the computed sections. */
8826
8827 if (reginfo_sec != NULL)
8828 {
8829 Elf32_External_RegInfo ext;
8830
8831 bfd_mips_elf32_swap_reginfo_out (abfd, &reginfo, &ext);
8832 if (! bfd_set_section_contents (abfd, reginfo_sec, &ext, 0, sizeof ext))
8833 return FALSE;
8834 }
8835
8836 if (mdebug_sec != NULL)
8837 {
8838 BFD_ASSERT (abfd->output_has_begun);
8839 if (! bfd_ecoff_write_accumulated_debug (mdebug_handle, abfd, &debug,
8840 swap, info,
8841 mdebug_sec->filepos))
8842 return FALSE;
8843
8844 bfd_ecoff_debug_free (mdebug_handle, abfd, &debug, swap, info);
8845 }
8846
8847 if (gptab_data_sec != NULL)
8848 {
8849 if (! bfd_set_section_contents (abfd, gptab_data_sec,
8850 gptab_data_sec->contents,
8851 0, gptab_data_sec->_raw_size))
8852 return FALSE;
8853 }
8854
8855 if (gptab_bss_sec != NULL)
8856 {
8857 if (! bfd_set_section_contents (abfd, gptab_bss_sec,
8858 gptab_bss_sec->contents,
8859 0, gptab_bss_sec->_raw_size))
8860 return FALSE;
8861 }
8862
8863 if (SGI_COMPAT (abfd))
8864 {
8865 rtproc_sec = bfd_get_section_by_name (abfd, ".rtproc");
8866 if (rtproc_sec != NULL)
8867 {
8868 if (! bfd_set_section_contents (abfd, rtproc_sec,
8869 rtproc_sec->contents,
8870 0, rtproc_sec->_raw_size))
8871 return FALSE;
8872 }
8873 }
8874
8875 return TRUE;
8876 }
8877 \f
8878 /* Structure for saying that BFD machine EXTENSION extends BASE. */
8879
8880 struct mips_mach_extension {
8881 unsigned long extension, base;
8882 };
8883
8884
8885 /* An array describing how BFD machines relate to one another. The entries
8886 are ordered topologically with MIPS I extensions listed last. */
8887
8888 static const struct mips_mach_extension mips_mach_extensions[] = {
8889 /* MIPS64 extensions. */
8890 { bfd_mach_mipsisa64r2, bfd_mach_mipsisa64 },
8891 { bfd_mach_mips_sb1, bfd_mach_mipsisa64 },
8892
8893 /* MIPS V extensions. */
8894 { bfd_mach_mipsisa64, bfd_mach_mips5 },
8895
8896 /* R10000 extensions. */
8897 { bfd_mach_mips12000, bfd_mach_mips10000 },
8898
8899 /* R5000 extensions. Note: the vr5500 ISA is an extension of the core
8900 vr5400 ISA, but doesn't include the multimedia stuff. It seems
8901 better to allow vr5400 and vr5500 code to be merged anyway, since
8902 many libraries will just use the core ISA. Perhaps we could add
8903 some sort of ASE flag if this ever proves a problem. */
8904 { bfd_mach_mips5500, bfd_mach_mips5400 },
8905 { bfd_mach_mips5400, bfd_mach_mips5000 },
8906
8907 /* MIPS IV extensions. */
8908 { bfd_mach_mips5, bfd_mach_mips8000 },
8909 { bfd_mach_mips10000, bfd_mach_mips8000 },
8910 { bfd_mach_mips5000, bfd_mach_mips8000 },
8911 { bfd_mach_mips7000, bfd_mach_mips8000 },
8912
8913 /* VR4100 extensions. */
8914 { bfd_mach_mips4120, bfd_mach_mips4100 },
8915 { bfd_mach_mips4111, bfd_mach_mips4100 },
8916
8917 /* MIPS III extensions. */
8918 { bfd_mach_mips8000, bfd_mach_mips4000 },
8919 { bfd_mach_mips4650, bfd_mach_mips4000 },
8920 { bfd_mach_mips4600, bfd_mach_mips4000 },
8921 { bfd_mach_mips4400, bfd_mach_mips4000 },
8922 { bfd_mach_mips4300, bfd_mach_mips4000 },
8923 { bfd_mach_mips4100, bfd_mach_mips4000 },
8924 { bfd_mach_mips4010, bfd_mach_mips4000 },
8925
8926 /* MIPS32 extensions. */
8927 { bfd_mach_mipsisa32r2, bfd_mach_mipsisa32 },
8928
8929 /* MIPS II extensions. */
8930 { bfd_mach_mips4000, bfd_mach_mips6000 },
8931 { bfd_mach_mipsisa32, bfd_mach_mips6000 },
8932
8933 /* MIPS I extensions. */
8934 { bfd_mach_mips6000, bfd_mach_mips3000 },
8935 { bfd_mach_mips3900, bfd_mach_mips3000 }
8936 };
8937
8938
8939 /* Return true if bfd machine EXTENSION is an extension of machine BASE. */
8940
8941 static bfd_boolean
8942 mips_mach_extends_p (unsigned long base, unsigned long extension)
8943 {
8944 size_t i;
8945
8946 for (i = 0; extension != base && i < ARRAY_SIZE (mips_mach_extensions); i++)
8947 if (extension == mips_mach_extensions[i].extension)
8948 extension = mips_mach_extensions[i].base;
8949
8950 return extension == base;
8951 }
8952
8953
8954 /* Return true if the given ELF header flags describe a 32-bit binary. */
8955
8956 static bfd_boolean
8957 mips_32bit_flags_p (flagword flags)
8958 {
8959 return ((flags & EF_MIPS_32BITMODE) != 0
8960 || (flags & EF_MIPS_ABI) == E_MIPS_ABI_O32
8961 || (flags & EF_MIPS_ABI) == E_MIPS_ABI_EABI32
8962 || (flags & EF_MIPS_ARCH) == E_MIPS_ARCH_1
8963 || (flags & EF_MIPS_ARCH) == E_MIPS_ARCH_2
8964 || (flags & EF_MIPS_ARCH) == E_MIPS_ARCH_32
8965 || (flags & EF_MIPS_ARCH) == E_MIPS_ARCH_32R2);
8966 }
8967
8968
8969 /* Merge backend specific data from an object file to the output
8970 object file when linking. */
8971
8972 bfd_boolean
8973 _bfd_mips_elf_merge_private_bfd_data (bfd *ibfd, bfd *obfd)
8974 {
8975 flagword old_flags;
8976 flagword new_flags;
8977 bfd_boolean ok;
8978 bfd_boolean null_input_bfd = TRUE;
8979 asection *sec;
8980
8981 /* Check if we have the same endianess */
8982 if (! _bfd_generic_verify_endian_match (ibfd, obfd))
8983 {
8984 (*_bfd_error_handler)
8985 (_("%s: endianness incompatible with that of the selected emulation"),
8986 bfd_archive_filename (ibfd));
8987 return FALSE;
8988 }
8989
8990 if (bfd_get_flavour (ibfd) != bfd_target_elf_flavour
8991 || bfd_get_flavour (obfd) != bfd_target_elf_flavour)
8992 return TRUE;
8993
8994 if (strcmp (bfd_get_target (ibfd), bfd_get_target (obfd)) != 0)
8995 {
8996 (*_bfd_error_handler)
8997 (_("%s: ABI is incompatible with that of the selected emulation"),
8998 bfd_archive_filename (ibfd));
8999 return FALSE;
9000 }
9001
9002 new_flags = elf_elfheader (ibfd)->e_flags;
9003 elf_elfheader (obfd)->e_flags |= new_flags & EF_MIPS_NOREORDER;
9004 old_flags = elf_elfheader (obfd)->e_flags;
9005
9006 if (! elf_flags_init (obfd))
9007 {
9008 elf_flags_init (obfd) = TRUE;
9009 elf_elfheader (obfd)->e_flags = new_flags;
9010 elf_elfheader (obfd)->e_ident[EI_CLASS]
9011 = elf_elfheader (ibfd)->e_ident[EI_CLASS];
9012
9013 if (bfd_get_arch (obfd) == bfd_get_arch (ibfd)
9014 && bfd_get_arch_info (obfd)->the_default)
9015 {
9016 if (! bfd_set_arch_mach (obfd, bfd_get_arch (ibfd),
9017 bfd_get_mach (ibfd)))
9018 return FALSE;
9019 }
9020
9021 return TRUE;
9022 }
9023
9024 /* Check flag compatibility. */
9025
9026 new_flags &= ~EF_MIPS_NOREORDER;
9027 old_flags &= ~EF_MIPS_NOREORDER;
9028
9029 /* Some IRIX 6 BSD-compatibility objects have this bit set. It
9030 doesn't seem to matter. */
9031 new_flags &= ~EF_MIPS_XGOT;
9032 old_flags &= ~EF_MIPS_XGOT;
9033
9034 /* MIPSpro generates ucode info in n64 objects. Again, we should
9035 just be able to ignore this. */
9036 new_flags &= ~EF_MIPS_UCODE;
9037 old_flags &= ~EF_MIPS_UCODE;
9038
9039 if (new_flags == old_flags)
9040 return TRUE;
9041
9042 /* Check to see if the input BFD actually contains any sections.
9043 If not, its flags may not have been initialised either, but it cannot
9044 actually cause any incompatibility. */
9045 for (sec = ibfd->sections; sec != NULL; sec = sec->next)
9046 {
9047 /* Ignore synthetic sections and empty .text, .data and .bss sections
9048 which are automatically generated by gas. */
9049 if (strcmp (sec->name, ".reginfo")
9050 && strcmp (sec->name, ".mdebug")
9051 && ((!strcmp (sec->name, ".text")
9052 || !strcmp (sec->name, ".data")
9053 || !strcmp (sec->name, ".bss"))
9054 && sec->_raw_size != 0))
9055 {
9056 null_input_bfd = FALSE;
9057 break;
9058 }
9059 }
9060 if (null_input_bfd)
9061 return TRUE;
9062
9063 ok = TRUE;
9064
9065 if (((new_flags & (EF_MIPS_PIC | EF_MIPS_CPIC)) != 0)
9066 != ((old_flags & (EF_MIPS_PIC | EF_MIPS_CPIC)) != 0))
9067 {
9068 (*_bfd_error_handler)
9069 (_("%s: warning: linking PIC files with non-PIC files"),
9070 bfd_archive_filename (ibfd));
9071 ok = TRUE;
9072 }
9073
9074 if (new_flags & (EF_MIPS_PIC | EF_MIPS_CPIC))
9075 elf_elfheader (obfd)->e_flags |= EF_MIPS_CPIC;
9076 if (! (new_flags & EF_MIPS_PIC))
9077 elf_elfheader (obfd)->e_flags &= ~EF_MIPS_PIC;
9078
9079 new_flags &= ~ (EF_MIPS_PIC | EF_MIPS_CPIC);
9080 old_flags &= ~ (EF_MIPS_PIC | EF_MIPS_CPIC);
9081
9082 /* Compare the ISAs. */
9083 if (mips_32bit_flags_p (old_flags) != mips_32bit_flags_p (new_flags))
9084 {
9085 (*_bfd_error_handler)
9086 (_("%s: linking 32-bit code with 64-bit code"),
9087 bfd_archive_filename (ibfd));
9088 ok = FALSE;
9089 }
9090 else if (!mips_mach_extends_p (bfd_get_mach (ibfd), bfd_get_mach (obfd)))
9091 {
9092 /* OBFD's ISA isn't the same as, or an extension of, IBFD's. */
9093 if (mips_mach_extends_p (bfd_get_mach (obfd), bfd_get_mach (ibfd)))
9094 {
9095 /* Copy the architecture info from IBFD to OBFD. Also copy
9096 the 32-bit flag (if set) so that we continue to recognise
9097 OBFD as a 32-bit binary. */
9098 bfd_set_arch_info (obfd, bfd_get_arch_info (ibfd));
9099 elf_elfheader (obfd)->e_flags &= ~(EF_MIPS_ARCH | EF_MIPS_MACH);
9100 elf_elfheader (obfd)->e_flags
9101 |= new_flags & (EF_MIPS_ARCH | EF_MIPS_MACH | EF_MIPS_32BITMODE);
9102
9103 /* Copy across the ABI flags if OBFD doesn't use them
9104 and if that was what caused us to treat IBFD as 32-bit. */
9105 if ((old_flags & EF_MIPS_ABI) == 0
9106 && mips_32bit_flags_p (new_flags)
9107 && !mips_32bit_flags_p (new_flags & ~EF_MIPS_ABI))
9108 elf_elfheader (obfd)->e_flags |= new_flags & EF_MIPS_ABI;
9109 }
9110 else
9111 {
9112 /* The ISAs aren't compatible. */
9113 (*_bfd_error_handler)
9114 (_("%s: linking %s module with previous %s modules"),
9115 bfd_archive_filename (ibfd),
9116 bfd_printable_name (ibfd),
9117 bfd_printable_name (obfd));
9118 ok = FALSE;
9119 }
9120 }
9121
9122 new_flags &= ~(EF_MIPS_ARCH | EF_MIPS_MACH | EF_MIPS_32BITMODE);
9123 old_flags &= ~(EF_MIPS_ARCH | EF_MIPS_MACH | EF_MIPS_32BITMODE);
9124
9125 /* Compare ABIs. The 64-bit ABI does not use EF_MIPS_ABI. But, it
9126 does set EI_CLASS differently from any 32-bit ABI. */
9127 if ((new_flags & EF_MIPS_ABI) != (old_flags & EF_MIPS_ABI)
9128 || (elf_elfheader (ibfd)->e_ident[EI_CLASS]
9129 != elf_elfheader (obfd)->e_ident[EI_CLASS]))
9130 {
9131 /* Only error if both are set (to different values). */
9132 if (((new_flags & EF_MIPS_ABI) && (old_flags & EF_MIPS_ABI))
9133 || (elf_elfheader (ibfd)->e_ident[EI_CLASS]
9134 != elf_elfheader (obfd)->e_ident[EI_CLASS]))
9135 {
9136 (*_bfd_error_handler)
9137 (_("%s: ABI mismatch: linking %s module with previous %s modules"),
9138 bfd_archive_filename (ibfd),
9139 elf_mips_abi_name (ibfd),
9140 elf_mips_abi_name (obfd));
9141 ok = FALSE;
9142 }
9143 new_flags &= ~EF_MIPS_ABI;
9144 old_flags &= ~EF_MIPS_ABI;
9145 }
9146
9147 /* For now, allow arbitrary mixing of ASEs (retain the union). */
9148 if ((new_flags & EF_MIPS_ARCH_ASE) != (old_flags & EF_MIPS_ARCH_ASE))
9149 {
9150 elf_elfheader (obfd)->e_flags |= new_flags & EF_MIPS_ARCH_ASE;
9151
9152 new_flags &= ~ EF_MIPS_ARCH_ASE;
9153 old_flags &= ~ EF_MIPS_ARCH_ASE;
9154 }
9155
9156 /* Warn about any other mismatches */
9157 if (new_flags != old_flags)
9158 {
9159 (*_bfd_error_handler)
9160 (_("%s: uses different e_flags (0x%lx) fields than previous modules (0x%lx)"),
9161 bfd_archive_filename (ibfd), (unsigned long) new_flags,
9162 (unsigned long) old_flags);
9163 ok = FALSE;
9164 }
9165
9166 if (! ok)
9167 {
9168 bfd_set_error (bfd_error_bad_value);
9169 return FALSE;
9170 }
9171
9172 return TRUE;
9173 }
9174
9175 /* Function to keep MIPS specific file flags like as EF_MIPS_PIC. */
9176
9177 bfd_boolean
9178 _bfd_mips_elf_set_private_flags (bfd *abfd, flagword flags)
9179 {
9180 BFD_ASSERT (!elf_flags_init (abfd)
9181 || elf_elfheader (abfd)->e_flags == flags);
9182
9183 elf_elfheader (abfd)->e_flags = flags;
9184 elf_flags_init (abfd) = TRUE;
9185 return TRUE;
9186 }
9187
9188 bfd_boolean
9189 _bfd_mips_elf_print_private_bfd_data (bfd *abfd, void *ptr)
9190 {
9191 FILE *file = ptr;
9192
9193 BFD_ASSERT (abfd != NULL && ptr != NULL);
9194
9195 /* Print normal ELF private data. */
9196 _bfd_elf_print_private_bfd_data (abfd, ptr);
9197
9198 /* xgettext:c-format */
9199 fprintf (file, _("private flags = %lx:"), elf_elfheader (abfd)->e_flags);
9200
9201 if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ABI) == E_MIPS_ABI_O32)
9202 fprintf (file, _(" [abi=O32]"));
9203 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ABI) == E_MIPS_ABI_O64)
9204 fprintf (file, _(" [abi=O64]"));
9205 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ABI) == E_MIPS_ABI_EABI32)
9206 fprintf (file, _(" [abi=EABI32]"));
9207 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ABI) == E_MIPS_ABI_EABI64)
9208 fprintf (file, _(" [abi=EABI64]"));
9209 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ABI))
9210 fprintf (file, _(" [abi unknown]"));
9211 else if (ABI_N32_P (abfd))
9212 fprintf (file, _(" [abi=N32]"));
9213 else if (ABI_64_P (abfd))
9214 fprintf (file, _(" [abi=64]"));
9215 else
9216 fprintf (file, _(" [no abi set]"));
9217
9218 if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_1)
9219 fprintf (file, _(" [mips1]"));
9220 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_2)
9221 fprintf (file, _(" [mips2]"));
9222 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_3)
9223 fprintf (file, _(" [mips3]"));
9224 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_4)
9225 fprintf (file, _(" [mips4]"));
9226 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_5)
9227 fprintf (file, _(" [mips5]"));
9228 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_32)
9229 fprintf (file, _(" [mips32]"));
9230 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_64)
9231 fprintf (file, _(" [mips64]"));
9232 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_32R2)
9233 fprintf (file, _(" [mips32r2]"));
9234 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_64R2)
9235 fprintf (file, _(" [mips64r2]"));
9236 else
9237 fprintf (file, _(" [unknown ISA]"));
9238
9239 if (elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH_ASE_MDMX)
9240 fprintf (file, _(" [mdmx]"));
9241
9242 if (elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH_ASE_M16)
9243 fprintf (file, _(" [mips16]"));
9244
9245 if (elf_elfheader (abfd)->e_flags & EF_MIPS_32BITMODE)
9246 fprintf (file, _(" [32bitmode]"));
9247 else
9248 fprintf (file, _(" [not 32bitmode]"));
9249
9250 fputc ('\n', file);
9251
9252 return TRUE;
9253 }
9254
9255 struct bfd_elf_special_section const _bfd_mips_elf_special_sections[]=
9256 {
9257 { ".sdata", 6, -2, SHT_PROGBITS, SHF_ALLOC + SHF_WRITE + SHF_MIPS_GPREL },
9258 { ".sbss", 5, -2, SHT_NOBITS, SHF_ALLOC + SHF_WRITE + SHF_MIPS_GPREL },
9259 { ".lit4", 5, 0, SHT_PROGBITS, SHF_ALLOC + SHF_WRITE + SHF_MIPS_GPREL },
9260 { ".lit8", 5, 0, SHT_PROGBITS, SHF_ALLOC + SHF_WRITE + SHF_MIPS_GPREL },
9261 { ".ucode", 6, 0, SHT_MIPS_UCODE, 0 },
9262 { ".mdebug", 7, 0, SHT_MIPS_DEBUG, 0 },
9263 { NULL, 0, 0, 0, 0 }
9264 };