2003-03-12 Andrew Cagney <cagney@redhat.com>
[binutils-gdb.git] / gdb / doc / gdbint.texinfo
1 \input texinfo @c -*- texinfo -*-
2 @setfilename gdbint.info
3 @include gdb-cfg.texi
4 @dircategory Programming & development tools.
5 @direntry
6 * Gdb-Internals: (gdbint). The GNU debugger's internals.
7 @end direntry
8
9 @ifinfo
10 This file documents the internals of the GNU debugger @value{GDBN}.
11 Copyright 1990,1991,1992,1993,1994,1996,1998,1999,2000,2001,2002,2003
12 Free Software Foundation, Inc.
13 Contributed by Cygnus Solutions. Written by John Gilmore.
14 Second Edition by Stan Shebs.
15
16 Permission is granted to copy, distribute and/or modify this document
17 under the terms of the GNU Free Documentation License, Version 1.1 or
18 any later version published by the Free Software Foundation; with no
19 Invariant Sections, with the Front-Cover Texts being ``A GNU Manual,''
20 and with the Back-Cover Texts as in (a) below.
21
22 (a) The FSF's Back-Cover Text is: ``You have freedom to copy and modify
23 this GNU Manual, like GNU software. Copies published by the Free
24 Software Foundation raise funds for GNU development.''
25 @end ifinfo
26
27 @setchapternewpage off
28 @settitle @value{GDBN} Internals
29
30 @syncodeindex fn cp
31 @syncodeindex vr cp
32
33 @titlepage
34 @title @value{GDBN} Internals
35 @subtitle{A guide to the internals of the GNU debugger}
36 @author John Gilmore
37 @author Cygnus Solutions
38 @author Second Edition:
39 @author Stan Shebs
40 @author Cygnus Solutions
41 @page
42 @tex
43 \def\$#1${{#1}} % Kluge: collect RCS revision info without $...$
44 \xdef\manvers{\$Revision$} % For use in headers, footers too
45 {\parskip=0pt
46 \hfill Cygnus Solutions\par
47 \hfill \manvers\par
48 \hfill \TeX{}info \texinfoversion\par
49 }
50 @end tex
51
52 @vskip 0pt plus 1filll
53 Copyright @copyright{} 1990,1991,1992,1993,1994,1996,1998,1999,2000,2001,
54 2002, 2003 Free Software Foundation, Inc.
55
56 Permission is granted to copy, distribute and/or modify this document
57 under the terms of the GNU Free Documentation License, Version 1.1 or
58 any later version published by the Free Software Foundation; with no
59 Invariant Sections, with the Front-Cover Texts being ``A GNU Manual,''
60 and with the Back-Cover Texts as in (a) below.
61
62 (a) The FSF's Back-Cover Text is: ``You have freedom to copy and modify
63 this GNU Manual, like GNU software. Copies published by the Free
64 Software Foundation raise funds for GNU development.''
65 @end titlepage
66
67 @contents
68
69 @node Top
70 @c Perhaps this should be the title of the document (but only for info,
71 @c not for TeX). Existing GNU manuals seem inconsistent on this point.
72 @top Scope of this Document
73
74 This document documents the internals of the GNU debugger, @value{GDBN}. It
75 includes description of @value{GDBN}'s key algorithms and operations, as well
76 as the mechanisms that adapt @value{GDBN} to specific hosts and targets.
77
78 @menu
79 * Requirements::
80 * Overall Structure::
81 * Algorithms::
82 * User Interface::
83 * libgdb::
84 * Symbol Handling::
85 * Language Support::
86 * Host Definition::
87 * Target Architecture Definition::
88 * Target Vector Definition::
89 * Native Debugging::
90 * Support Libraries::
91 * Coding::
92 * Porting GDB::
93 * Releasing GDB::
94 * Testsuite::
95 * Hints::
96
97 * GNU Free Documentation License:: The license for this documentation
98 * Index::
99 @end menu
100
101 @node Requirements
102
103 @chapter Requirements
104 @cindex requirements for @value{GDBN}
105
106 Before diving into the internals, you should understand the formal
107 requirements and other expectations for @value{GDBN}. Although some
108 of these may seem obvious, there have been proposals for @value{GDBN}
109 that have run counter to these requirements.
110
111 First of all, @value{GDBN} is a debugger. It's not designed to be a
112 front panel for embedded systems. It's not a text editor. It's not a
113 shell. It's not a programming environment.
114
115 @value{GDBN} is an interactive tool. Although a batch mode is
116 available, @value{GDBN}'s primary role is to interact with a human
117 programmer.
118
119 @value{GDBN} should be responsive to the user. A programmer hot on
120 the trail of a nasty bug, and operating under a looming deadline, is
121 going to be very impatient of everything, including the response time
122 to debugger commands.
123
124 @value{GDBN} should be relatively permissive, such as for expressions.
125 While the compiler should be picky (or have the option to be made
126 picky), since source code lives for a long time usually, the
127 programmer doing debugging shouldn't be spending time figuring out to
128 mollify the debugger.
129
130 @value{GDBN} will be called upon to deal with really large programs.
131 Executable sizes of 50 to 100 megabytes occur regularly, and we've
132 heard reports of programs approaching 1 gigabyte in size.
133
134 @value{GDBN} should be able to run everywhere. No other debugger is
135 available for even half as many configurations as @value{GDBN}
136 supports.
137
138
139 @node Overall Structure
140
141 @chapter Overall Structure
142
143 @value{GDBN} consists of three major subsystems: user interface,
144 symbol handling (the @dfn{symbol side}), and target system handling (the
145 @dfn{target side}).
146
147 The user interface consists of several actual interfaces, plus
148 supporting code.
149
150 The symbol side consists of object file readers, debugging info
151 interpreters, symbol table management, source language expression
152 parsing, type and value printing.
153
154 The target side consists of execution control, stack frame analysis, and
155 physical target manipulation.
156
157 The target side/symbol side division is not formal, and there are a
158 number of exceptions. For instance, core file support involves symbolic
159 elements (the basic core file reader is in BFD) and target elements (it
160 supplies the contents of memory and the values of registers). Instead,
161 this division is useful for understanding how the minor subsystems
162 should fit together.
163
164 @section The Symbol Side
165
166 The symbolic side of @value{GDBN} can be thought of as ``everything
167 you can do in @value{GDBN} without having a live program running''.
168 For instance, you can look at the types of variables, and evaluate
169 many kinds of expressions.
170
171 @section The Target Side
172
173 The target side of @value{GDBN} is the ``bits and bytes manipulator''.
174 Although it may make reference to symbolic info here and there, most
175 of the target side will run with only a stripped executable
176 available---or even no executable at all, in remote debugging cases.
177
178 Operations such as disassembly, stack frame crawls, and register
179 display, are able to work with no symbolic info at all. In some cases,
180 such as disassembly, @value{GDBN} will use symbolic info to present addresses
181 relative to symbols rather than as raw numbers, but it will work either
182 way.
183
184 @section Configurations
185
186 @cindex host
187 @cindex target
188 @dfn{Host} refers to attributes of the system where @value{GDBN} runs.
189 @dfn{Target} refers to the system where the program being debugged
190 executes. In most cases they are the same machine, in which case a
191 third type of @dfn{Native} attributes come into play.
192
193 Defines and include files needed to build on the host are host support.
194 Examples are tty support, system defined types, host byte order, host
195 float format.
196
197 Defines and information needed to handle the target format are target
198 dependent. Examples are the stack frame format, instruction set,
199 breakpoint instruction, registers, and how to set up and tear down the stack
200 to call a function.
201
202 Information that is only needed when the host and target are the same,
203 is native dependent. One example is Unix child process support; if the
204 host and target are not the same, doing a fork to start the target
205 process is a bad idea. The various macros needed for finding the
206 registers in the @code{upage}, running @code{ptrace}, and such are all
207 in the native-dependent files.
208
209 Another example of native-dependent code is support for features that
210 are really part of the target environment, but which require
211 @code{#include} files that are only available on the host system. Core
212 file handling and @code{setjmp} handling are two common cases.
213
214 When you want to make @value{GDBN} work ``native'' on a particular machine, you
215 have to include all three kinds of information.
216
217
218 @node Algorithms
219
220 @chapter Algorithms
221 @cindex algorithms
222
223 @value{GDBN} uses a number of debugging-specific algorithms. They are
224 often not very complicated, but get lost in the thicket of special
225 cases and real-world issues. This chapter describes the basic
226 algorithms and mentions some of the specific target definitions that
227 they use.
228
229 @section Frames
230
231 @cindex frame
232 @cindex call stack frame
233 A frame is a construct that @value{GDBN} uses to keep track of calling
234 and called functions.
235
236 @findex create_new_frame
237 @vindex FRAME_FP
238 @code{FRAME_FP} in the machine description has no meaning to the
239 machine-independent part of @value{GDBN}, except that it is used when
240 setting up a new frame from scratch, as follows:
241
242 @smallexample
243 create_new_frame (read_register (FP_REGNUM), read_pc ()));
244 @end smallexample
245
246 @cindex frame pointer register
247 Other than that, all the meaning imparted to @code{FP_REGNUM} is
248 imparted by the machine-dependent code. So, @code{FP_REGNUM} can have
249 any value that is convenient for the code that creates new frames.
250 (@code{create_new_frame} calls @code{DEPRECATED_INIT_EXTRA_FRAME_INFO}
251 if it is defined; that is where you should use the @code{FP_REGNUM}
252 value, if your frames are nonstandard.)
253
254 @cindex frame chain
255 Given a @value{GDBN} frame, define @code{FRAME_CHAIN} to determine the
256 address of the calling function's frame. This will be used to create a
257 new @value{GDBN} frame struct, and then
258 @code{DEPRECATED_INIT_EXTRA_FRAME_INFO} and
259 @code{DEPRECATED_INIT_FRAME_PC} will be called for the new frame.
260
261 @section Breakpoint Handling
262
263 @cindex breakpoints
264 In general, a breakpoint is a user-designated location in the program
265 where the user wants to regain control if program execution ever reaches
266 that location.
267
268 There are two main ways to implement breakpoints; either as ``hardware''
269 breakpoints or as ``software'' breakpoints.
270
271 @cindex hardware breakpoints
272 @cindex program counter
273 Hardware breakpoints are sometimes available as a builtin debugging
274 features with some chips. Typically these work by having dedicated
275 register into which the breakpoint address may be stored. If the PC
276 (shorthand for @dfn{program counter})
277 ever matches a value in a breakpoint registers, the CPU raises an
278 exception and reports it to @value{GDBN}.
279
280 Another possibility is when an emulator is in use; many emulators
281 include circuitry that watches the address lines coming out from the
282 processor, and force it to stop if the address matches a breakpoint's
283 address.
284
285 A third possibility is that the target already has the ability to do
286 breakpoints somehow; for instance, a ROM monitor may do its own
287 software breakpoints. So although these are not literally ``hardware
288 breakpoints'', from @value{GDBN}'s point of view they work the same;
289 @value{GDBN} need not do nothing more than set the breakpoint and wait
290 for something to happen.
291
292 Since they depend on hardware resources, hardware breakpoints may be
293 limited in number; when the user asks for more, @value{GDBN} will
294 start trying to set software breakpoints. (On some architectures,
295 notably the 32-bit x86 platforms, @value{GDBN} cannot always know
296 whether there's enough hardware resources to insert all the hardware
297 breakpoints and watchpoints. On those platforms, @value{GDBN} prints
298 an error message only when the program being debugged is continued.)
299
300 @cindex software breakpoints
301 Software breakpoints require @value{GDBN} to do somewhat more work.
302 The basic theory is that @value{GDBN} will replace a program
303 instruction with a trap, illegal divide, or some other instruction
304 that will cause an exception, and then when it's encountered,
305 @value{GDBN} will take the exception and stop the program. When the
306 user says to continue, @value{GDBN} will restore the original
307 instruction, single-step, re-insert the trap, and continue on.
308
309 Since it literally overwrites the program being tested, the program area
310 must be writable, so this technique won't work on programs in ROM. It
311 can also distort the behavior of programs that examine themselves,
312 although such a situation would be highly unusual.
313
314 Also, the software breakpoint instruction should be the smallest size of
315 instruction, so it doesn't overwrite an instruction that might be a jump
316 target, and cause disaster when the program jumps into the middle of the
317 breakpoint instruction. (Strictly speaking, the breakpoint must be no
318 larger than the smallest interval between instructions that may be jump
319 targets; perhaps there is an architecture where only even-numbered
320 instructions may jumped to.) Note that it's possible for an instruction
321 set not to have any instructions usable for a software breakpoint,
322 although in practice only the ARC has failed to define such an
323 instruction.
324
325 @findex BREAKPOINT
326 The basic definition of the software breakpoint is the macro
327 @code{BREAKPOINT}.
328
329 Basic breakpoint object handling is in @file{breakpoint.c}. However,
330 much of the interesting breakpoint action is in @file{infrun.c}.
331
332 @section Single Stepping
333
334 @section Signal Handling
335
336 @section Thread Handling
337
338 @section Inferior Function Calls
339
340 @section Longjmp Support
341
342 @cindex @code{longjmp} debugging
343 @value{GDBN} has support for figuring out that the target is doing a
344 @code{longjmp} and for stopping at the target of the jump, if we are
345 stepping. This is done with a few specialized internal breakpoints,
346 which are visible in the output of the @samp{maint info breakpoint}
347 command.
348
349 @findex GET_LONGJMP_TARGET
350 To make this work, you need to define a macro called
351 @code{GET_LONGJMP_TARGET}, which will examine the @code{jmp_buf}
352 structure and extract the longjmp target address. Since @code{jmp_buf}
353 is target specific, you will need to define it in the appropriate
354 @file{tm-@var{target}.h} file. Look in @file{tm-sun4os4.h} and
355 @file{sparc-tdep.c} for examples of how to do this.
356
357 @section Watchpoints
358 @cindex watchpoints
359
360 Watchpoints are a special kind of breakpoints (@pxref{Algorithms,
361 breakpoints}) which break when data is accessed rather than when some
362 instruction is executed. When you have data which changes without
363 your knowing what code does that, watchpoints are the silver bullet to
364 hunt down and kill such bugs.
365
366 @cindex hardware watchpoints
367 @cindex software watchpoints
368 Watchpoints can be either hardware-assisted or not; the latter type is
369 known as ``software watchpoints.'' @value{GDBN} always uses
370 hardware-assisted watchpoints if they are available, and falls back on
371 software watchpoints otherwise. Typical situations where @value{GDBN}
372 will use software watchpoints are:
373
374 @itemize @bullet
375 @item
376 The watched memory region is too large for the underlying hardware
377 watchpoint support. For example, each x86 debug register can watch up
378 to 4 bytes of memory, so trying to watch data structures whose size is
379 more than 16 bytes will cause @value{GDBN} to use software
380 watchpoints.
381
382 @item
383 The value of the expression to be watched depends on data held in
384 registers (as opposed to memory).
385
386 @item
387 Too many different watchpoints requested. (On some architectures,
388 this situation is impossible to detect until the debugged program is
389 resumed.) Note that x86 debug registers are used both for hardware
390 breakpoints and for watchpoints, so setting too many hardware
391 breakpoints might cause watchpoint insertion to fail.
392
393 @item
394 No hardware-assisted watchpoints provided by the target
395 implementation.
396 @end itemize
397
398 Software watchpoints are very slow, since @value{GDBN} needs to
399 single-step the program being debugged and test the value of the
400 watched expression(s) after each instruction. The rest of this
401 section is mostly irrelevant for software watchpoints.
402
403 @value{GDBN} uses several macros and primitives to support hardware
404 watchpoints:
405
406 @table @code
407 @findex TARGET_HAS_HARDWARE_WATCHPOINTS
408 @item TARGET_HAS_HARDWARE_WATCHPOINTS
409 If defined, the target supports hardware watchpoints.
410
411 @findex TARGET_CAN_USE_HARDWARE_WATCHPOINT
412 @item TARGET_CAN_USE_HARDWARE_WATCHPOINT (@var{type}, @var{count}, @var{other})
413 Return the number of hardware watchpoints of type @var{type} that are
414 possible to be set. The value is positive if @var{count} watchpoints
415 of this type can be set, zero if setting watchpoints of this type is
416 not supported, and negative if @var{count} is more than the maximum
417 number of watchpoints of type @var{type} that can be set. @var{other}
418 is non-zero if other types of watchpoints are currently enabled (there
419 are architectures which cannot set watchpoints of different types at
420 the same time).
421
422 @findex TARGET_REGION_OK_FOR_HW_WATCHPOINT
423 @item TARGET_REGION_OK_FOR_HW_WATCHPOINT (@var{addr}, @var{len})
424 Return non-zero if hardware watchpoints can be used to watch a region
425 whose address is @var{addr} and whose length in bytes is @var{len}.
426
427 @findex TARGET_REGION_SIZE_OK_FOR_HW_WATCHPOINT
428 @item TARGET_REGION_SIZE_OK_FOR_HW_WATCHPOINT (@var{size})
429 Return non-zero if hardware watchpoints can be used to watch a region
430 whose size is @var{size}. @value{GDBN} only uses this macro as a
431 fall-back, in case @code{TARGET_REGION_OK_FOR_HW_WATCHPOINT} is not
432 defined.
433
434 @findex TARGET_DISABLE_HW_WATCHPOINTS
435 @item TARGET_DISABLE_HW_WATCHPOINTS (@var{pid})
436 Disables watchpoints in the process identified by @var{pid}. This is
437 used, e.g., on HP-UX which provides operations to disable and enable
438 the page-level memory protection that implements hardware watchpoints
439 on that platform.
440
441 @findex TARGET_ENABLE_HW_WATCHPOINTS
442 @item TARGET_ENABLE_HW_WATCHPOINTS (@var{pid})
443 Enables watchpoints in the process identified by @var{pid}. This is
444 used, e.g., on HP-UX which provides operations to disable and enable
445 the page-level memory protection that implements hardware watchpoints
446 on that platform.
447
448 @findex target_insert_watchpoint
449 @findex target_remove_watchpoint
450 @item target_insert_watchpoint (@var{addr}, @var{len}, @var{type})
451 @itemx target_remove_watchpoint (@var{addr}, @var{len}, @var{type})
452 Insert or remove a hardware watchpoint starting at @var{addr}, for
453 @var{len} bytes. @var{type} is the watchpoint type, one of the
454 possible values of the enumerated data type @code{target_hw_bp_type},
455 defined by @file{breakpoint.h} as follows:
456
457 @smallexample
458 enum target_hw_bp_type
459 @{
460 hw_write = 0, /* Common (write) HW watchpoint */
461 hw_read = 1, /* Read HW watchpoint */
462 hw_access = 2, /* Access (read or write) HW watchpoint */
463 hw_execute = 3 /* Execute HW breakpoint */
464 @};
465 @end smallexample
466
467 @noindent
468 These two macros should return 0 for success, non-zero for failure.
469
470 @cindex insert or remove hardware breakpoint
471 @findex target_remove_hw_breakpoint
472 @findex target_insert_hw_breakpoint
473 @item target_remove_hw_breakpoint (@var{addr}, @var{shadow})
474 @itemx target_insert_hw_breakpoint (@var{addr}, @var{shadow})
475 Insert or remove a hardware-assisted breakpoint at address @var{addr}.
476 Returns zero for success, non-zero for failure. @var{shadow} is the
477 real contents of the byte where the breakpoint has been inserted; it
478 is generally not valid when hardware breakpoints are used, but since
479 no other code touches these values, the implementations of the above
480 two macros can use them for their internal purposes.
481
482 @findex target_stopped_data_address
483 @item target_stopped_data_address ()
484 If the inferior has some watchpoint that triggered, return the address
485 associated with that watchpoint. Otherwise, return zero.
486
487 @findex DECR_PC_AFTER_HW_BREAK
488 @item DECR_PC_AFTER_HW_BREAK
489 If defined, @value{GDBN} decrements the program counter by the value
490 of @code{DECR_PC_AFTER_HW_BREAK} after a hardware break-point. This
491 overrides the value of @code{DECR_PC_AFTER_BREAK} when a breakpoint
492 that breaks is a hardware-assisted breakpoint.
493
494 @findex HAVE_STEPPABLE_WATCHPOINT
495 @item HAVE_STEPPABLE_WATCHPOINT
496 If defined to a non-zero value, it is not necessary to disable a
497 watchpoint to step over it.
498
499 @findex HAVE_NONSTEPPABLE_WATCHPOINT
500 @item HAVE_NONSTEPPABLE_WATCHPOINT
501 If defined to a non-zero value, @value{GDBN} should disable a
502 watchpoint to step the inferior over it.
503
504 @findex HAVE_CONTINUABLE_WATCHPOINT
505 @item HAVE_CONTINUABLE_WATCHPOINT
506 If defined to a non-zero value, it is possible to continue the
507 inferior after a watchpoint has been hit.
508
509 @findex CANNOT_STEP_HW_WATCHPOINTS
510 @item CANNOT_STEP_HW_WATCHPOINTS
511 If this is defined to a non-zero value, @value{GDBN} will remove all
512 watchpoints before stepping the inferior.
513
514 @findex STOPPED_BY_WATCHPOINT
515 @item STOPPED_BY_WATCHPOINT (@var{wait_status})
516 Return non-zero if stopped by a watchpoint. @var{wait_status} is of
517 the type @code{struct target_waitstatus}, defined by @file{target.h}.
518 @end table
519
520 @subsection x86 Watchpoints
521 @cindex x86 debug registers
522 @cindex watchpoints, on x86
523
524 The 32-bit Intel x86 (a.k.a.@: ia32) processors feature special debug
525 registers designed to facilitate debugging. @value{GDBN} provides a
526 generic library of functions that x86-based ports can use to implement
527 support for watchpoints and hardware-assisted breakpoints. This
528 subsection documents the x86 watchpoint facilities in @value{GDBN}.
529
530 To use the generic x86 watchpoint support, a port should do the
531 following:
532
533 @itemize @bullet
534 @findex I386_USE_GENERIC_WATCHPOINTS
535 @item
536 Define the macro @code{I386_USE_GENERIC_WATCHPOINTS} somewhere in the
537 target-dependent headers.
538
539 @item
540 Include the @file{config/i386/nm-i386.h} header file @emph{after}
541 defining @code{I386_USE_GENERIC_WATCHPOINTS}.
542
543 @item
544 Add @file{i386-nat.o} to the value of the Make variable
545 @code{NATDEPFILES} (@pxref{Native Debugging, NATDEPFILES}) or
546 @code{TDEPFILES} (@pxref{Target Architecture Definition, TDEPFILES}).
547
548 @item
549 Provide implementations for the @code{I386_DR_LOW_*} macros described
550 below. Typically, each macro should call a target-specific function
551 which does the real work.
552 @end itemize
553
554 The x86 watchpoint support works by maintaining mirror images of the
555 debug registers. Values are copied between the mirror images and the
556 real debug registers via a set of macros which each target needs to
557 provide:
558
559 @table @code
560 @findex I386_DR_LOW_SET_CONTROL
561 @item I386_DR_LOW_SET_CONTROL (@var{val})
562 Set the Debug Control (DR7) register to the value @var{val}.
563
564 @findex I386_DR_LOW_SET_ADDR
565 @item I386_DR_LOW_SET_ADDR (@var{idx}, @var{addr})
566 Put the address @var{addr} into the debug register number @var{idx}.
567
568 @findex I386_DR_LOW_RESET_ADDR
569 @item I386_DR_LOW_RESET_ADDR (@var{idx})
570 Reset (i.e.@: zero out) the address stored in the debug register
571 number @var{idx}.
572
573 @findex I386_DR_LOW_GET_STATUS
574 @item I386_DR_LOW_GET_STATUS
575 Return the value of the Debug Status (DR6) register. This value is
576 used immediately after it is returned by
577 @code{I386_DR_LOW_GET_STATUS}, so as to support per-thread status
578 register values.
579 @end table
580
581 For each one of the 4 debug registers (whose indices are from 0 to 3)
582 that store addresses, a reference count is maintained by @value{GDBN},
583 to allow sharing of debug registers by several watchpoints. This
584 allows users to define several watchpoints that watch the same
585 expression, but with different conditions and/or commands, without
586 wasting debug registers which are in short supply. @value{GDBN}
587 maintains the reference counts internally, targets don't have to do
588 anything to use this feature.
589
590 The x86 debug registers can each watch a region that is 1, 2, or 4
591 bytes long. The ia32 architecture requires that each watched region
592 be appropriately aligned: 2-byte region on 2-byte boundary, 4-byte
593 region on 4-byte boundary. However, the x86 watchpoint support in
594 @value{GDBN} can watch unaligned regions and regions larger than 4
595 bytes (up to 16 bytes) by allocating several debug registers to watch
596 a single region. This allocation of several registers per a watched
597 region is also done automatically without target code intervention.
598
599 The generic x86 watchpoint support provides the following API for the
600 @value{GDBN}'s application code:
601
602 @table @code
603 @findex i386_region_ok_for_watchpoint
604 @item i386_region_ok_for_watchpoint (@var{addr}, @var{len})
605 The macro @code{TARGET_REGION_OK_FOR_HW_WATCHPOINT} is set to call
606 this function. It counts the number of debug registers required to
607 watch a given region, and returns a non-zero value if that number is
608 less than 4, the number of debug registers available to x86
609 processors.
610
611 @findex i386_stopped_data_address
612 @item i386_stopped_data_address (void)
613 The macros @code{STOPPED_BY_WATCHPOINT} and
614 @code{target_stopped_data_address} are set to call this function. The
615 argument passed to @code{STOPPED_BY_WATCHPOINT} is ignored. This
616 function examines the breakpoint condition bits in the DR6 Debug
617 Status register, as returned by the @code{I386_DR_LOW_GET_STATUS}
618 macro, and returns the address associated with the first bit that is
619 set in DR6.
620
621 @findex i386_insert_watchpoint
622 @findex i386_remove_watchpoint
623 @item i386_insert_watchpoint (@var{addr}, @var{len}, @var{type})
624 @itemx i386_remove_watchpoint (@var{addr}, @var{len}, @var{type})
625 Insert or remove a watchpoint. The macros
626 @code{target_insert_watchpoint} and @code{target_remove_watchpoint}
627 are set to call these functions. @code{i386_insert_watchpoint} first
628 looks for a debug register which is already set to watch the same
629 region for the same access types; if found, it just increments the
630 reference count of that debug register, thus implementing debug
631 register sharing between watchpoints. If no such register is found,
632 the function looks for a vacant debug register, sets its mirrored
633 value to @var{addr}, sets the mirrored value of DR7 Debug Control
634 register as appropriate for the @var{len} and @var{type} parameters,
635 and then passes the new values of the debug register and DR7 to the
636 inferior by calling @code{I386_DR_LOW_SET_ADDR} and
637 @code{I386_DR_LOW_SET_CONTROL}. If more than one debug register is
638 required to cover the given region, the above process is repeated for
639 each debug register.
640
641 @code{i386_remove_watchpoint} does the opposite: it resets the address
642 in the mirrored value of the debug register and its read/write and
643 length bits in the mirrored value of DR7, then passes these new
644 values to the inferior via @code{I386_DR_LOW_RESET_ADDR} and
645 @code{I386_DR_LOW_SET_CONTROL}. If a register is shared by several
646 watchpoints, each time a @code{i386_remove_watchpoint} is called, it
647 decrements the reference count, and only calls
648 @code{I386_DR_LOW_RESET_ADDR} and @code{I386_DR_LOW_SET_CONTROL} when
649 the count goes to zero.
650
651 @findex i386_insert_hw_breakpoint
652 @findex i386_remove_hw_breakpoint
653 @item i386_insert_hw_breakpoint (@var{addr}, @var{shadow}
654 @itemx i386_remove_hw_breakpoint (@var{addr}, @var{shadow})
655 These functions insert and remove hardware-assisted breakpoints. The
656 macros @code{target_insert_hw_breakpoint} and
657 @code{target_remove_hw_breakpoint} are set to call these functions.
658 These functions work like @code{i386_insert_watchpoint} and
659 @code{i386_remove_watchpoint}, respectively, except that they set up
660 the debug registers to watch instruction execution, and each
661 hardware-assisted breakpoint always requires exactly one debug
662 register.
663
664 @findex i386_stopped_by_hwbp
665 @item i386_stopped_by_hwbp (void)
666 This function returns non-zero if the inferior has some watchpoint or
667 hardware breakpoint that triggered. It works like
668 @code{i386_stopped_data_address}, except that it doesn't return the
669 address whose watchpoint triggered.
670
671 @findex i386_cleanup_dregs
672 @item i386_cleanup_dregs (void)
673 This function clears all the reference counts, addresses, and control
674 bits in the mirror images of the debug registers. It doesn't affect
675 the actual debug registers in the inferior process.
676 @end table
677
678 @noindent
679 @strong{Notes:}
680 @enumerate 1
681 @item
682 x86 processors support setting watchpoints on I/O reads or writes.
683 However, since no target supports this (as of March 2001), and since
684 @code{enum target_hw_bp_type} doesn't even have an enumeration for I/O
685 watchpoints, this feature is not yet available to @value{GDBN} running
686 on x86.
687
688 @item
689 x86 processors can enable watchpoints locally, for the current task
690 only, or globally, for all the tasks. For each debug register,
691 there's a bit in the DR7 Debug Control register that determines
692 whether the associated address is watched locally or globally. The
693 current implementation of x86 watchpoint support in @value{GDBN}
694 always sets watchpoints to be locally enabled, since global
695 watchpoints might interfere with the underlying OS and are probably
696 unavailable in many platforms.
697 @end enumerate
698
699 @node User Interface
700
701 @chapter User Interface
702
703 @value{GDBN} has several user interfaces. Although the command-line interface
704 is the most common and most familiar, there are others.
705
706 @section Command Interpreter
707
708 @cindex command interpreter
709 @cindex CLI
710 The command interpreter in @value{GDBN} is fairly simple. It is designed to
711 allow for the set of commands to be augmented dynamically, and also
712 has a recursive subcommand capability, where the first argument to
713 a command may itself direct a lookup on a different command list.
714
715 For instance, the @samp{set} command just starts a lookup on the
716 @code{setlist} command list, while @samp{set thread} recurses
717 to the @code{set_thread_cmd_list}.
718
719 @findex add_cmd
720 @findex add_com
721 To add commands in general, use @code{add_cmd}. @code{add_com} adds to
722 the main command list, and should be used for those commands. The usual
723 place to add commands is in the @code{_initialize_@var{xyz}} routines at
724 the ends of most source files.
725
726 @findex add_setshow_cmd
727 @findex add_setshow_cmd_full
728 To add paired @samp{set} and @samp{show} commands, use
729 @code{add_setshow_cmd} or @code{add_setshow_cmd_full}. The former is
730 a slightly simpler interface which is useful when you don't need to
731 further modify the new command structures, while the latter returns
732 the new command structures for manipulation.
733
734 @cindex deprecating commands
735 @findex deprecate_cmd
736 Before removing commands from the command set it is a good idea to
737 deprecate them for some time. Use @code{deprecate_cmd} on commands or
738 aliases to set the deprecated flag. @code{deprecate_cmd} takes a
739 @code{struct cmd_list_element} as it's first argument. You can use the
740 return value from @code{add_com} or @code{add_cmd} to deprecate the
741 command immediately after it is created.
742
743 The first time a command is used the user will be warned and offered a
744 replacement (if one exists). Note that the replacement string passed to
745 @code{deprecate_cmd} should be the full name of the command, i.e. the
746 entire string the user should type at the command line.
747
748 @section UI-Independent Output---the @code{ui_out} Functions
749 @c This section is based on the documentation written by Fernando
750 @c Nasser <fnasser@redhat.com>.
751
752 @cindex @code{ui_out} functions
753 The @code{ui_out} functions present an abstraction level for the
754 @value{GDBN} output code. They hide the specifics of different user
755 interfaces supported by @value{GDBN}, and thus free the programmer
756 from the need to write several versions of the same code, one each for
757 every UI, to produce output.
758
759 @subsection Overview and Terminology
760
761 In general, execution of each @value{GDBN} command produces some sort
762 of output, and can even generate an input request.
763
764 Output can be generated for the following purposes:
765
766 @itemize @bullet
767 @item
768 to display a @emph{result} of an operation;
769
770 @item
771 to convey @emph{info} or produce side-effects of a requested
772 operation;
773
774 @item
775 to provide a @emph{notification} of an asynchronous event (including
776 progress indication of a prolonged asynchronous operation);
777
778 @item
779 to display @emph{error messages} (including warnings);
780
781 @item
782 to show @emph{debug data};
783
784 @item
785 to @emph{query} or prompt a user for input (a special case).
786 @end itemize
787
788 @noindent
789 This section mainly concentrates on how to build result output,
790 although some of it also applies to other kinds of output.
791
792 Generation of output that displays the results of an operation
793 involves one or more of the following:
794
795 @itemize @bullet
796 @item
797 output of the actual data
798
799 @item
800 formatting the output as appropriate for console output, to make it
801 easily readable by humans
802
803 @item
804 machine oriented formatting--a more terse formatting to allow for easy
805 parsing by programs which read @value{GDBN}'s output
806
807 @item
808 annotation, whose purpose is to help legacy GUIs to identify interesting
809 parts in the output
810 @end itemize
811
812 The @code{ui_out} routines take care of the first three aspects.
813 Annotations are provided by separate annotation routines. Note that use
814 of annotations for an interface between a GUI and @value{GDBN} is
815 deprecated.
816
817 Output can be in the form of a single item, which we call a @dfn{field};
818 a @dfn{list} consisting of identical fields; a @dfn{tuple} consisting of
819 non-identical fields; or a @dfn{table}, which is a tuple consisting of a
820 header and a body. In a BNF-like form:
821
822 @table @code
823 @item <table> @expansion{}
824 @code{<header> <body>}
825 @item <header> @expansion{}
826 @code{@{ <column> @}}
827 @item <column> @expansion{}
828 @code{<width> <alignment> <title>}
829 @item <body> @expansion{}
830 @code{@{<row>@}}
831 @end table
832
833
834 @subsection General Conventions
835
836 Most @code{ui_out} routines are of type @code{void}, the exceptions are
837 @code{ui_out_stream_new} (which returns a pointer to the newly created
838 object) and the @code{make_cleanup} routines.
839
840 The first parameter is always the @code{ui_out} vector object, a pointer
841 to a @code{struct ui_out}.
842
843 The @var{format} parameter is like in @code{printf} family of functions.
844 When it is present, there must also be a variable list of arguments
845 sufficient used to satisfy the @code{%} specifiers in the supplied
846 format.
847
848 When a character string argument is not used in a @code{ui_out} function
849 call, a @code{NULL} pointer has to be supplied instead.
850
851
852 @subsection Table, Tuple and List Functions
853
854 @cindex list output functions
855 @cindex table output functions
856 @cindex tuple output functions
857 This section introduces @code{ui_out} routines for building lists,
858 tuples and tables. The routines to output the actual data items
859 (fields) are presented in the next section.
860
861 To recap: A @dfn{tuple} is a sequence of @dfn{fields}, each field
862 containing information about an object; a @dfn{list} is a sequence of
863 fields where each field describes an identical object.
864
865 Use the @dfn{table} functions when your output consists of a list of
866 rows (tuples) and the console output should include a heading. Use this
867 even when you are listing just one object but you still want the header.
868
869 @cindex nesting level in @code{ui_out} functions
870 Tables can not be nested. Tuples and lists can be nested up to a
871 maximum of five levels.
872
873 The overall structure of the table output code is something like this:
874
875 @smallexample
876 ui_out_table_begin
877 ui_out_table_header
878 @dots{}
879 ui_out_table_body
880 ui_out_tuple_begin
881 ui_out_field_*
882 @dots{}
883 ui_out_tuple_end
884 @dots{}
885 ui_out_table_end
886 @end smallexample
887
888 Here is the description of table-, tuple- and list-related @code{ui_out}
889 functions:
890
891 @deftypefun void ui_out_table_begin (struct ui_out *@var{uiout}, int @var{nbrofcols}, int @var{nr_rows}, const char *@var{tblid})
892 The function @code{ui_out_table_begin} marks the beginning of the output
893 of a table. It should always be called before any other @code{ui_out}
894 function for a given table. @var{nbrofcols} is the number of columns in
895 the table. @var{nr_rows} is the number of rows in the table.
896 @var{tblid} is an optional string identifying the table. The string
897 pointed to by @var{tblid} is copied by the implementation of
898 @code{ui_out_table_begin}, so the application can free the string if it
899 was @code{malloc}ed.
900
901 The companion function @code{ui_out_table_end}, described below, marks
902 the end of the table's output.
903 @end deftypefun
904
905 @deftypefun void ui_out_table_header (struct ui_out *@var{uiout}, int @var{width}, enum ui_align @var{alignment}, const char *@var{colhdr})
906 @code{ui_out_table_header} provides the header information for a single
907 table column. You call this function several times, one each for every
908 column of the table, after @code{ui_out_table_begin}, but before
909 @code{ui_out_table_body}.
910
911 The value of @var{width} gives the column width in characters. The
912 value of @var{alignment} is one of @code{left}, @code{center}, and
913 @code{right}, and it specifies how to align the header: left-justify,
914 center, or right-justify it. @var{colhdr} points to a string that
915 specifies the column header; the implementation copies that string, so
916 column header strings in @code{malloc}ed storage can be freed after the
917 call.
918 @end deftypefun
919
920 @deftypefun void ui_out_table_body (struct ui_out *@var{uiout})
921 This function delimits the table header from the table body.
922 @end deftypefun
923
924 @deftypefun void ui_out_table_end (struct ui_out *@var{uiout})
925 This function signals the end of a table's output. It should be called
926 after the table body has been produced by the list and field output
927 functions.
928
929 There should be exactly one call to @code{ui_out_table_end} for each
930 call to @code{ui_out_table_begin}, otherwise the @code{ui_out} functions
931 will signal an internal error.
932 @end deftypefun
933
934 The output of the tuples that represent the table rows must follow the
935 call to @code{ui_out_table_body} and precede the call to
936 @code{ui_out_table_end}. You build a tuple by calling
937 @code{ui_out_tuple_begin} and @code{ui_out_tuple_end}, with suitable
938 calls to functions which actually output fields between them.
939
940 @deftypefun void ui_out_tuple_begin (struct ui_out *@var{uiout}, const char *@var{id})
941 This function marks the beginning of a tuple output. @var{id} points
942 to an optional string that identifies the tuple; it is copied by the
943 implementation, and so strings in @code{malloc}ed storage can be freed
944 after the call.
945 @end deftypefun
946
947 @deftypefun void ui_out_tuple_end (struct ui_out *@var{uiout})
948 This function signals an end of a tuple output. There should be exactly
949 one call to @code{ui_out_tuple_end} for each call to
950 @code{ui_out_tuple_begin}, otherwise an internal @value{GDBN} error will
951 be signaled.
952 @end deftypefun
953
954 @deftypefun struct cleanup *make_cleanup_ui_out_tuple_begin_end (struct ui_out *@var{uiout}, const char *@var{id})
955 This function first opens the tuple and then establishes a cleanup
956 (@pxref{Coding, Cleanups}) to close the tuple. It provides a convenient
957 and correct implementation of the non-portable@footnote{The function
958 cast is not portable ISO C.} code sequence:
959 @smallexample
960 struct cleanup *old_cleanup;
961 ui_out_tuple_begin (uiout, "...");
962 old_cleanup = make_cleanup ((void(*)(void *)) ui_out_tuple_end,
963 uiout);
964 @end smallexample
965 @end deftypefun
966
967 @deftypefun void ui_out_list_begin (struct ui_out *@var{uiout}, const char *@var{id})
968 This function marks the beginning of a list output. @var{id} points to
969 an optional string that identifies the list; it is copied by the
970 implementation, and so strings in @code{malloc}ed storage can be freed
971 after the call.
972 @end deftypefun
973
974 @deftypefun void ui_out_list_end (struct ui_out *@var{uiout})
975 This function signals an end of a list output. There should be exactly
976 one call to @code{ui_out_list_end} for each call to
977 @code{ui_out_list_begin}, otherwise an internal @value{GDBN} error will
978 be signaled.
979 @end deftypefun
980
981 @deftypefun struct cleanup *make_cleanup_ui_out_list_begin_end (struct ui_out *@var{uiout}, const char *@var{id})
982 Similar to @code{make_cleanup_ui_out_tuple_begin_end}, this function
983 opens a list and then establishes cleanup (@pxref{Coding, Cleanups})
984 that will close the list.list.
985 @end deftypefun
986
987 @subsection Item Output Functions
988
989 @cindex item output functions
990 @cindex field output functions
991 @cindex data output
992 The functions described below produce output for the actual data
993 items, or fields, which contain information about the object.
994
995 Choose the appropriate function accordingly to your particular needs.
996
997 @deftypefun void ui_out_field_fmt (struct ui_out *@var{uiout}, char *@var{fldname}, char *@var{format}, ...)
998 This is the most general output function. It produces the
999 representation of the data in the variable-length argument list
1000 according to formatting specifications in @var{format}, a
1001 @code{printf}-like format string. The optional argument @var{fldname}
1002 supplies the name of the field. The data items themselves are
1003 supplied as additional arguments after @var{format}.
1004
1005 This generic function should be used only when it is not possible to
1006 use one of the specialized versions (see below).
1007 @end deftypefun
1008
1009 @deftypefun void ui_out_field_int (struct ui_out *@var{uiout}, const char *@var{fldname}, int @var{value})
1010 This function outputs a value of an @code{int} variable. It uses the
1011 @code{"%d"} output conversion specification. @var{fldname} specifies
1012 the name of the field.
1013 @end deftypefun
1014
1015 @deftypefun void ui_out_field_fmt_int (struct ui_out *@var{uiout}, int @var{width}, enum ui_align @var{alignment}, const char *@var{fldname}, int @var{value})
1016 This function outputs a value of an @code{int} variable. It differs from
1017 @code{ui_out_field_int} in that the caller specifies the desired @var{width} and @var{alignment} of the output.
1018 @var{fldname} specifies
1019 the name of the field.
1020 @end deftypefun
1021
1022 @deftypefun void ui_out_field_core_addr (struct ui_out *@var{uiout}, const char *@var{fldname}, CORE_ADDR @var{address})
1023 This function outputs an address.
1024 @end deftypefun
1025
1026 @deftypefun void ui_out_field_string (struct ui_out *@var{uiout}, const char *@var{fldname}, const char *@var{string})
1027 This function outputs a string using the @code{"%s"} conversion
1028 specification.
1029 @end deftypefun
1030
1031 Sometimes, there's a need to compose your output piece by piece using
1032 functions that operate on a stream, such as @code{value_print} or
1033 @code{fprintf_symbol_filtered}. These functions accept an argument of
1034 the type @code{struct ui_file *}, a pointer to a @code{ui_file} object
1035 used to store the data stream used for the output. When you use one
1036 of these functions, you need a way to pass their results stored in a
1037 @code{ui_file} object to the @code{ui_out} functions. To this end,
1038 you first create a @code{ui_stream} object by calling
1039 @code{ui_out_stream_new}, pass the @code{stream} member of that
1040 @code{ui_stream} object to @code{value_print} and similar functions,
1041 and finally call @code{ui_out_field_stream} to output the field you
1042 constructed. When the @code{ui_stream} object is no longer needed,
1043 you should destroy it and free its memory by calling
1044 @code{ui_out_stream_delete}.
1045
1046 @deftypefun struct ui_stream *ui_out_stream_new (struct ui_out *@var{uiout})
1047 This function creates a new @code{ui_stream} object which uses the
1048 same output methods as the @code{ui_out} object whose pointer is
1049 passed in @var{uiout}. It returns a pointer to the newly created
1050 @code{ui_stream} object.
1051 @end deftypefun
1052
1053 @deftypefun void ui_out_stream_delete (struct ui_stream *@var{streambuf})
1054 This functions destroys a @code{ui_stream} object specified by
1055 @var{streambuf}.
1056 @end deftypefun
1057
1058 @deftypefun void ui_out_field_stream (struct ui_out *@var{uiout}, const char *@var{fieldname}, struct ui_stream *@var{streambuf})
1059 This function consumes all the data accumulated in
1060 @code{streambuf->stream} and outputs it like
1061 @code{ui_out_field_string} does. After a call to
1062 @code{ui_out_field_stream}, the accumulated data no longer exists, but
1063 the stream is still valid and may be used for producing more fields.
1064 @end deftypefun
1065
1066 @strong{Important:} If there is any chance that your code could bail
1067 out before completing output generation and reaching the point where
1068 @code{ui_out_stream_delete} is called, it is necessary to set up a
1069 cleanup, to avoid leaking memory and other resources. Here's a
1070 skeleton code to do that:
1071
1072 @smallexample
1073 struct ui_stream *mybuf = ui_out_stream_new (uiout);
1074 struct cleanup *old = make_cleanup (ui_out_stream_delete, mybuf);
1075 ...
1076 do_cleanups (old);
1077 @end smallexample
1078
1079 If the function already has the old cleanup chain set (for other kinds
1080 of cleanups), you just have to add your cleanup to it:
1081
1082 @smallexample
1083 mybuf = ui_out_stream_new (uiout);
1084 make_cleanup (ui_out_stream_delete, mybuf);
1085 @end smallexample
1086
1087 Note that with cleanups in place, you should not call
1088 @code{ui_out_stream_delete} directly, or you would attempt to free the
1089 same buffer twice.
1090
1091 @subsection Utility Output Functions
1092
1093 @deftypefun void ui_out_field_skip (struct ui_out *@var{uiout}, const char *@var{fldname})
1094 This function skips a field in a table. Use it if you have to leave
1095 an empty field without disrupting the table alignment. The argument
1096 @var{fldname} specifies a name for the (missing) filed.
1097 @end deftypefun
1098
1099 @deftypefun void ui_out_text (struct ui_out *@var{uiout}, const char *@var{string})
1100 This function outputs the text in @var{string} in a way that makes it
1101 easy to be read by humans. For example, the console implementation of
1102 this method filters the text through a built-in pager, to prevent it
1103 from scrolling off the visible portion of the screen.
1104
1105 Use this function for printing relatively long chunks of text around
1106 the actual field data: the text it produces is not aligned according
1107 to the table's format. Use @code{ui_out_field_string} to output a
1108 string field, and use @code{ui_out_message}, described below, to
1109 output short messages.
1110 @end deftypefun
1111
1112 @deftypefun void ui_out_spaces (struct ui_out *@var{uiout}, int @var{nspaces})
1113 This function outputs @var{nspaces} spaces. It is handy to align the
1114 text produced by @code{ui_out_text} with the rest of the table or
1115 list.
1116 @end deftypefun
1117
1118 @deftypefun void ui_out_message (struct ui_out *@var{uiout}, int @var{verbosity}, const char *@var{format}, ...)
1119 This function produces a formatted message, provided that the current
1120 verbosity level is at least as large as given by @var{verbosity}. The
1121 current verbosity level is specified by the user with the @samp{set
1122 verbositylevel} command.@footnote{As of this writing (April 2001),
1123 setting verbosity level is not yet implemented, and is always returned
1124 as zero. So calling @code{ui_out_message} with a @var{verbosity}
1125 argument more than zero will cause the message to never be printed.}
1126 @end deftypefun
1127
1128 @deftypefun void ui_out_wrap_hint (struct ui_out *@var{uiout}, char *@var{indent})
1129 This function gives the console output filter (a paging filter) a hint
1130 of where to break lines which are too long. Ignored for all other
1131 output consumers. @var{indent}, if non-@code{NULL}, is the string to
1132 be printed to indent the wrapped text on the next line; it must remain
1133 accessible until the next call to @code{ui_out_wrap_hint}, or until an
1134 explicit newline is produced by one of the other functions. If
1135 @var{indent} is @code{NULL}, the wrapped text will not be indented.
1136 @end deftypefun
1137
1138 @deftypefun void ui_out_flush (struct ui_out *@var{uiout})
1139 This function flushes whatever output has been accumulated so far, if
1140 the UI buffers output.
1141 @end deftypefun
1142
1143
1144 @subsection Examples of Use of @code{ui_out} functions
1145
1146 @cindex using @code{ui_out} functions
1147 @cindex @code{ui_out} functions, usage examples
1148 This section gives some practical examples of using the @code{ui_out}
1149 functions to generalize the old console-oriented code in
1150 @value{GDBN}. The examples all come from functions defined on the
1151 @file{breakpoints.c} file.
1152
1153 This example, from the @code{breakpoint_1} function, shows how to
1154 produce a table.
1155
1156 The original code was:
1157
1158 @smallexample
1159 if (!found_a_breakpoint++)
1160 @{
1161 annotate_breakpoints_headers ();
1162
1163 annotate_field (0);
1164 printf_filtered ("Num ");
1165 annotate_field (1);
1166 printf_filtered ("Type ");
1167 annotate_field (2);
1168 printf_filtered ("Disp ");
1169 annotate_field (3);
1170 printf_filtered ("Enb ");
1171 if (addressprint)
1172 @{
1173 annotate_field (4);
1174 printf_filtered ("Address ");
1175 @}
1176 annotate_field (5);
1177 printf_filtered ("What\n");
1178
1179 annotate_breakpoints_table ();
1180 @}
1181 @end smallexample
1182
1183 Here's the new version:
1184
1185 @smallexample
1186 nr_printable_breakpoints = @dots{};
1187
1188 if (addressprint)
1189 ui_out_table_begin (ui, 6, nr_printable_breakpoints, "BreakpointTable");
1190 else
1191 ui_out_table_begin (ui, 5, nr_printable_breakpoints, "BreakpointTable");
1192
1193 if (nr_printable_breakpoints > 0)
1194 annotate_breakpoints_headers ();
1195 if (nr_printable_breakpoints > 0)
1196 annotate_field (0);
1197 ui_out_table_header (uiout, 3, ui_left, "number", "Num"); /* 1 */
1198 if (nr_printable_breakpoints > 0)
1199 annotate_field (1);
1200 ui_out_table_header (uiout, 14, ui_left, "type", "Type"); /* 2 */
1201 if (nr_printable_breakpoints > 0)
1202 annotate_field (2);
1203 ui_out_table_header (uiout, 4, ui_left, "disp", "Disp"); /* 3 */
1204 if (nr_printable_breakpoints > 0)
1205 annotate_field (3);
1206 ui_out_table_header (uiout, 3, ui_left, "enabled", "Enb"); /* 4 */
1207 if (addressprint)
1208 @{
1209 if (nr_printable_breakpoints > 0)
1210 annotate_field (4);
1211 if (TARGET_ADDR_BIT <= 32)
1212 ui_out_table_header (uiout, 10, ui_left, "addr", "Address");/* 5 */
1213 else
1214 ui_out_table_header (uiout, 18, ui_left, "addr", "Address");/* 5 */
1215 @}
1216 if (nr_printable_breakpoints > 0)
1217 annotate_field (5);
1218 ui_out_table_header (uiout, 40, ui_noalign, "what", "What"); /* 6 */
1219 ui_out_table_body (uiout);
1220 if (nr_printable_breakpoints > 0)
1221 annotate_breakpoints_table ();
1222 @end smallexample
1223
1224 This example, from the @code{print_one_breakpoint} function, shows how
1225 to produce the actual data for the table whose structure was defined
1226 in the above example. The original code was:
1227
1228 @smallexample
1229 annotate_record ();
1230 annotate_field (0);
1231 printf_filtered ("%-3d ", b->number);
1232 annotate_field (1);
1233 if ((int)b->type > (sizeof(bptypes)/sizeof(bptypes[0]))
1234 || ((int) b->type != bptypes[(int) b->type].type))
1235 internal_error ("bptypes table does not describe type #%d.",
1236 (int)b->type);
1237 printf_filtered ("%-14s ", bptypes[(int)b->type].description);
1238 annotate_field (2);
1239 printf_filtered ("%-4s ", bpdisps[(int)b->disposition]);
1240 annotate_field (3);
1241 printf_filtered ("%-3c ", bpenables[(int)b->enable]);
1242 @dots{}
1243 @end smallexample
1244
1245 This is the new version:
1246
1247 @smallexample
1248 annotate_record ();
1249 ui_out_tuple_begin (uiout, "bkpt");
1250 annotate_field (0);
1251 ui_out_field_int (uiout, "number", b->number);
1252 annotate_field (1);
1253 if (((int) b->type > (sizeof (bptypes) / sizeof (bptypes[0])))
1254 || ((int) b->type != bptypes[(int) b->type].type))
1255 internal_error ("bptypes table does not describe type #%d.",
1256 (int) b->type);
1257 ui_out_field_string (uiout, "type", bptypes[(int)b->type].description);
1258 annotate_field (2);
1259 ui_out_field_string (uiout, "disp", bpdisps[(int)b->disposition]);
1260 annotate_field (3);
1261 ui_out_field_fmt (uiout, "enabled", "%c", bpenables[(int)b->enable]);
1262 @dots{}
1263 @end smallexample
1264
1265 This example, also from @code{print_one_breakpoint}, shows how to
1266 produce a complicated output field using the @code{print_expression}
1267 functions which requires a stream to be passed. It also shows how to
1268 automate stream destruction with cleanups. The original code was:
1269
1270 @smallexample
1271 annotate_field (5);
1272 print_expression (b->exp, gdb_stdout);
1273 @end smallexample
1274
1275 The new version is:
1276
1277 @smallexample
1278 struct ui_stream *stb = ui_out_stream_new (uiout);
1279 struct cleanup *old_chain = make_cleanup_ui_out_stream_delete (stb);
1280 ...
1281 annotate_field (5);
1282 print_expression (b->exp, stb->stream);
1283 ui_out_field_stream (uiout, "what", local_stream);
1284 @end smallexample
1285
1286 This example, also from @code{print_one_breakpoint}, shows how to use
1287 @code{ui_out_text} and @code{ui_out_field_string}. The original code
1288 was:
1289
1290 @smallexample
1291 annotate_field (5);
1292 if (b->dll_pathname == NULL)
1293 printf_filtered ("<any library> ");
1294 else
1295 printf_filtered ("library \"%s\" ", b->dll_pathname);
1296 @end smallexample
1297
1298 It became:
1299
1300 @smallexample
1301 annotate_field (5);
1302 if (b->dll_pathname == NULL)
1303 @{
1304 ui_out_field_string (uiout, "what", "<any library>");
1305 ui_out_spaces (uiout, 1);
1306 @}
1307 else
1308 @{
1309 ui_out_text (uiout, "library \"");
1310 ui_out_field_string (uiout, "what", b->dll_pathname);
1311 ui_out_text (uiout, "\" ");
1312 @}
1313 @end smallexample
1314
1315 The following example from @code{print_one_breakpoint} shows how to
1316 use @code{ui_out_field_int} and @code{ui_out_spaces}. The original
1317 code was:
1318
1319 @smallexample
1320 annotate_field (5);
1321 if (b->forked_inferior_pid != 0)
1322 printf_filtered ("process %d ", b->forked_inferior_pid);
1323 @end smallexample
1324
1325 It became:
1326
1327 @smallexample
1328 annotate_field (5);
1329 if (b->forked_inferior_pid != 0)
1330 @{
1331 ui_out_text (uiout, "process ");
1332 ui_out_field_int (uiout, "what", b->forked_inferior_pid);
1333 ui_out_spaces (uiout, 1);
1334 @}
1335 @end smallexample
1336
1337 Here's an example of using @code{ui_out_field_string}. The original
1338 code was:
1339
1340 @smallexample
1341 annotate_field (5);
1342 if (b->exec_pathname != NULL)
1343 printf_filtered ("program \"%s\" ", b->exec_pathname);
1344 @end smallexample
1345
1346 It became:
1347
1348 @smallexample
1349 annotate_field (5);
1350 if (b->exec_pathname != NULL)
1351 @{
1352 ui_out_text (uiout, "program \"");
1353 ui_out_field_string (uiout, "what", b->exec_pathname);
1354 ui_out_text (uiout, "\" ");
1355 @}
1356 @end smallexample
1357
1358 Finally, here's an example of printing an address. The original code:
1359
1360 @smallexample
1361 annotate_field (4);
1362 printf_filtered ("%s ",
1363 local_hex_string_custom ((unsigned long) b->address, "08l"));
1364 @end smallexample
1365
1366 It became:
1367
1368 @smallexample
1369 annotate_field (4);
1370 ui_out_field_core_addr (uiout, "Address", b->address);
1371 @end smallexample
1372
1373
1374 @section Console Printing
1375
1376 @section TUI
1377
1378 @node libgdb
1379
1380 @chapter libgdb
1381
1382 @section libgdb 1.0
1383 @cindex @code{libgdb}
1384 @code{libgdb} 1.0 was an abortive project of years ago. The theory was
1385 to provide an API to @value{GDBN}'s functionality.
1386
1387 @section libgdb 2.0
1388 @cindex @code{libgdb}
1389 @code{libgdb} 2.0 is an ongoing effort to update @value{GDBN} so that is
1390 better able to support graphical and other environments.
1391
1392 Since @code{libgdb} development is on-going, its architecture is still
1393 evolving. The following components have so far been identified:
1394
1395 @itemize @bullet
1396 @item
1397 Observer - @file{gdb-events.h}.
1398 @item
1399 Builder - @file{ui-out.h}
1400 @item
1401 Event Loop - @file{event-loop.h}
1402 @item
1403 Library - @file{gdb.h}
1404 @end itemize
1405
1406 The model that ties these components together is described below.
1407
1408 @section The @code{libgdb} Model
1409
1410 A client of @code{libgdb} interacts with the library in two ways.
1411
1412 @itemize @bullet
1413 @item
1414 As an observer (using @file{gdb-events}) receiving notifications from
1415 @code{libgdb} of any internal state changes (break point changes, run
1416 state, etc).
1417 @item
1418 As a client querying @code{libgdb} (using the @file{ui-out} builder) to
1419 obtain various status values from @value{GDBN}.
1420 @end itemize
1421
1422 Since @code{libgdb} could have multiple clients (e.g. a GUI supporting
1423 the existing @value{GDBN} CLI), those clients must co-operate when
1424 controlling @code{libgdb}. In particular, a client must ensure that
1425 @code{libgdb} is idle (i.e. no other client is using @code{libgdb})
1426 before responding to a @file{gdb-event} by making a query.
1427
1428 @section CLI support
1429
1430 At present @value{GDBN}'s CLI is very much entangled in with the core of
1431 @code{libgdb}. Consequently, a client wishing to include the CLI in
1432 their interface needs to carefully co-ordinate its own and the CLI's
1433 requirements.
1434
1435 It is suggested that the client set @code{libgdb} up to be bi-modal
1436 (alternate between CLI and client query modes). The notes below sketch
1437 out the theory:
1438
1439 @itemize @bullet
1440 @item
1441 The client registers itself as an observer of @code{libgdb}.
1442 @item
1443 The client create and install @code{cli-out} builder using its own
1444 versions of the @code{ui-file} @code{gdb_stderr}, @code{gdb_stdtarg} and
1445 @code{gdb_stdout} streams.
1446 @item
1447 The client creates a separate custom @code{ui-out} builder that is only
1448 used while making direct queries to @code{libgdb}.
1449 @end itemize
1450
1451 When the client receives input intended for the CLI, it simply passes it
1452 along. Since the @code{cli-out} builder is installed by default, all
1453 the CLI output in response to that command is routed (pronounced rooted)
1454 through to the client controlled @code{gdb_stdout} et.@: al.@: streams.
1455 At the same time, the client is kept abreast of internal changes by
1456 virtue of being a @code{libgdb} observer.
1457
1458 The only restriction on the client is that it must wait until
1459 @code{libgdb} becomes idle before initiating any queries (using the
1460 client's custom builder).
1461
1462 @section @code{libgdb} components
1463
1464 @subheading Observer - @file{gdb-events.h}
1465 @file{gdb-events} provides the client with a very raw mechanism that can
1466 be used to implement an observer. At present it only allows for one
1467 observer and that observer must, internally, handle the need to delay
1468 the processing of any event notifications until after @code{libgdb} has
1469 finished the current command.
1470
1471 @subheading Builder - @file{ui-out.h}
1472 @file{ui-out} provides the infrastructure necessary for a client to
1473 create a builder. That builder is then passed down to @code{libgdb}
1474 when doing any queries.
1475
1476 @subheading Event Loop - @file{event-loop.h}
1477 @c There could be an entire section on the event-loop
1478 @file{event-loop}, currently non-re-entrant, provides a simple event
1479 loop. A client would need to either plug its self into this loop or,
1480 implement a new event-loop that GDB would use.
1481
1482 The event-loop will eventually be made re-entrant. This is so that
1483 @value{GDB} can better handle the problem of some commands blocking
1484 instead of returning.
1485
1486 @subheading Library - @file{gdb.h}
1487 @file{libgdb} is the most obvious component of this system. It provides
1488 the query interface. Each function is parameterized by a @code{ui-out}
1489 builder. The result of the query is constructed using that builder
1490 before the query function returns.
1491
1492 @node Symbol Handling
1493
1494 @chapter Symbol Handling
1495
1496 Symbols are a key part of @value{GDBN}'s operation. Symbols include variables,
1497 functions, and types.
1498
1499 @section Symbol Reading
1500
1501 @cindex symbol reading
1502 @cindex reading of symbols
1503 @cindex symbol files
1504 @value{GDBN} reads symbols from @dfn{symbol files}. The usual symbol
1505 file is the file containing the program which @value{GDBN} is
1506 debugging. @value{GDBN} can be directed to use a different file for
1507 symbols (with the @samp{symbol-file} command), and it can also read
1508 more symbols via the @samp{add-file} and @samp{load} commands, or while
1509 reading symbols from shared libraries.
1510
1511 @findex find_sym_fns
1512 Symbol files are initially opened by code in @file{symfile.c} using
1513 the BFD library (@pxref{Support Libraries}). BFD identifies the type
1514 of the file by examining its header. @code{find_sym_fns} then uses
1515 this identification to locate a set of symbol-reading functions.
1516
1517 @findex add_symtab_fns
1518 @cindex @code{sym_fns} structure
1519 @cindex adding a symbol-reading module
1520 Symbol-reading modules identify themselves to @value{GDBN} by calling
1521 @code{add_symtab_fns} during their module initialization. The argument
1522 to @code{add_symtab_fns} is a @code{struct sym_fns} which contains the
1523 name (or name prefix) of the symbol format, the length of the prefix,
1524 and pointers to four functions. These functions are called at various
1525 times to process symbol files whose identification matches the specified
1526 prefix.
1527
1528 The functions supplied by each module are:
1529
1530 @table @code
1531 @item @var{xyz}_symfile_init(struct sym_fns *sf)
1532
1533 @cindex secondary symbol file
1534 Called from @code{symbol_file_add} when we are about to read a new
1535 symbol file. This function should clean up any internal state (possibly
1536 resulting from half-read previous files, for example) and prepare to
1537 read a new symbol file. Note that the symbol file which we are reading
1538 might be a new ``main'' symbol file, or might be a secondary symbol file
1539 whose symbols are being added to the existing symbol table.
1540
1541 The argument to @code{@var{xyz}_symfile_init} is a newly allocated
1542 @code{struct sym_fns} whose @code{bfd} field contains the BFD for the
1543 new symbol file being read. Its @code{private} field has been zeroed,
1544 and can be modified as desired. Typically, a struct of private
1545 information will be @code{malloc}'d, and a pointer to it will be placed
1546 in the @code{private} field.
1547
1548 There is no result from @code{@var{xyz}_symfile_init}, but it can call
1549 @code{error} if it detects an unavoidable problem.
1550
1551 @item @var{xyz}_new_init()
1552
1553 Called from @code{symbol_file_add} when discarding existing symbols.
1554 This function needs only handle the symbol-reading module's internal
1555 state; the symbol table data structures visible to the rest of
1556 @value{GDBN} will be discarded by @code{symbol_file_add}. It has no
1557 arguments and no result. It may be called after
1558 @code{@var{xyz}_symfile_init}, if a new symbol table is being read, or
1559 may be called alone if all symbols are simply being discarded.
1560
1561 @item @var{xyz}_symfile_read(struct sym_fns *sf, CORE_ADDR addr, int mainline)
1562
1563 Called from @code{symbol_file_add} to actually read the symbols from a
1564 symbol-file into a set of psymtabs or symtabs.
1565
1566 @code{sf} points to the @code{struct sym_fns} originally passed to
1567 @code{@var{xyz}_sym_init} for possible initialization. @code{addr} is
1568 the offset between the file's specified start address and its true
1569 address in memory. @code{mainline} is 1 if this is the main symbol
1570 table being read, and 0 if a secondary symbol file (e.g. shared library
1571 or dynamically loaded file) is being read.@refill
1572 @end table
1573
1574 In addition, if a symbol-reading module creates psymtabs when
1575 @var{xyz}_symfile_read is called, these psymtabs will contain a pointer
1576 to a function @code{@var{xyz}_psymtab_to_symtab}, which can be called
1577 from any point in the @value{GDBN} symbol-handling code.
1578
1579 @table @code
1580 @item @var{xyz}_psymtab_to_symtab (struct partial_symtab *pst)
1581
1582 Called from @code{psymtab_to_symtab} (or the @code{PSYMTAB_TO_SYMTAB} macro) if
1583 the psymtab has not already been read in and had its @code{pst->symtab}
1584 pointer set. The argument is the psymtab to be fleshed-out into a
1585 symtab. Upon return, @code{pst->readin} should have been set to 1, and
1586 @code{pst->symtab} should contain a pointer to the new corresponding symtab, or
1587 zero if there were no symbols in that part of the symbol file.
1588 @end table
1589
1590 @section Partial Symbol Tables
1591
1592 @value{GDBN} has three types of symbol tables:
1593
1594 @itemize @bullet
1595 @cindex full symbol table
1596 @cindex symtabs
1597 @item
1598 Full symbol tables (@dfn{symtabs}). These contain the main
1599 information about symbols and addresses.
1600
1601 @cindex psymtabs
1602 @item
1603 Partial symbol tables (@dfn{psymtabs}). These contain enough
1604 information to know when to read the corresponding part of the full
1605 symbol table.
1606
1607 @cindex minimal symbol table
1608 @cindex minsymtabs
1609 @item
1610 Minimal symbol tables (@dfn{msymtabs}). These contain information
1611 gleaned from non-debugging symbols.
1612 @end itemize
1613
1614 @cindex partial symbol table
1615 This section describes partial symbol tables.
1616
1617 A psymtab is constructed by doing a very quick pass over an executable
1618 file's debugging information. Small amounts of information are
1619 extracted---enough to identify which parts of the symbol table will
1620 need to be re-read and fully digested later, when the user needs the
1621 information. The speed of this pass causes @value{GDBN} to start up very
1622 quickly. Later, as the detailed rereading occurs, it occurs in small
1623 pieces, at various times, and the delay therefrom is mostly invisible to
1624 the user.
1625 @c (@xref{Symbol Reading}.)
1626
1627 The symbols that show up in a file's psymtab should be, roughly, those
1628 visible to the debugger's user when the program is not running code from
1629 that file. These include external symbols and types, static symbols and
1630 types, and @code{enum} values declared at file scope.
1631
1632 The psymtab also contains the range of instruction addresses that the
1633 full symbol table would represent.
1634
1635 @cindex finding a symbol
1636 @cindex symbol lookup
1637 The idea is that there are only two ways for the user (or much of the
1638 code in the debugger) to reference a symbol:
1639
1640 @itemize @bullet
1641 @findex find_pc_function
1642 @findex find_pc_line
1643 @item
1644 By its address (e.g. execution stops at some address which is inside a
1645 function in this file). The address will be noticed to be in the
1646 range of this psymtab, and the full symtab will be read in.
1647 @code{find_pc_function}, @code{find_pc_line}, and other
1648 @code{find_pc_@dots{}} functions handle this.
1649
1650 @cindex lookup_symbol
1651 @item
1652 By its name
1653 (e.g. the user asks to print a variable, or set a breakpoint on a
1654 function). Global names and file-scope names will be found in the
1655 psymtab, which will cause the symtab to be pulled in. Local names will
1656 have to be qualified by a global name, or a file-scope name, in which
1657 case we will have already read in the symtab as we evaluated the
1658 qualifier. Or, a local symbol can be referenced when we are ``in'' a
1659 local scope, in which case the first case applies. @code{lookup_symbol}
1660 does most of the work here.
1661 @end itemize
1662
1663 The only reason that psymtabs exist is to cause a symtab to be read in
1664 at the right moment. Any symbol that can be elided from a psymtab,
1665 while still causing that to happen, should not appear in it. Since
1666 psymtabs don't have the idea of scope, you can't put local symbols in
1667 them anyway. Psymtabs don't have the idea of the type of a symbol,
1668 either, so types need not appear, unless they will be referenced by
1669 name.
1670
1671 It is a bug for @value{GDBN} to behave one way when only a psymtab has
1672 been read, and another way if the corresponding symtab has been read
1673 in. Such bugs are typically caused by a psymtab that does not contain
1674 all the visible symbols, or which has the wrong instruction address
1675 ranges.
1676
1677 The psymtab for a particular section of a symbol file (objfile) could be
1678 thrown away after the symtab has been read in. The symtab should always
1679 be searched before the psymtab, so the psymtab will never be used (in a
1680 bug-free environment). Currently, psymtabs are allocated on an obstack,
1681 and all the psymbols themselves are allocated in a pair of large arrays
1682 on an obstack, so there is little to be gained by trying to free them
1683 unless you want to do a lot more work.
1684
1685 @section Types
1686
1687 @unnumberedsubsec Fundamental Types (e.g., @code{FT_VOID}, @code{FT_BOOLEAN}).
1688
1689 @cindex fundamental types
1690 These are the fundamental types that @value{GDBN} uses internally. Fundamental
1691 types from the various debugging formats (stabs, ELF, etc) are mapped
1692 into one of these. They are basically a union of all fundamental types
1693 that @value{GDBN} knows about for all the languages that @value{GDBN}
1694 knows about.
1695
1696 @unnumberedsubsec Type Codes (e.g., @code{TYPE_CODE_PTR}, @code{TYPE_CODE_ARRAY}).
1697
1698 @cindex type codes
1699 Each time @value{GDBN} builds an internal type, it marks it with one
1700 of these types. The type may be a fundamental type, such as
1701 @code{TYPE_CODE_INT}, or a derived type, such as @code{TYPE_CODE_PTR}
1702 which is a pointer to another type. Typically, several @code{FT_*}
1703 types map to one @code{TYPE_CODE_*} type, and are distinguished by
1704 other members of the type struct, such as whether the type is signed
1705 or unsigned, and how many bits it uses.
1706
1707 @unnumberedsubsec Builtin Types (e.g., @code{builtin_type_void}, @code{builtin_type_char}).
1708
1709 These are instances of type structs that roughly correspond to
1710 fundamental types and are created as global types for @value{GDBN} to
1711 use for various ugly historical reasons. We eventually want to
1712 eliminate these. Note for example that @code{builtin_type_int}
1713 initialized in @file{gdbtypes.c} is basically the same as a
1714 @code{TYPE_CODE_INT} type that is initialized in @file{c-lang.c} for
1715 an @code{FT_INTEGER} fundamental type. The difference is that the
1716 @code{builtin_type} is not associated with any particular objfile, and
1717 only one instance exists, while @file{c-lang.c} builds as many
1718 @code{TYPE_CODE_INT} types as needed, with each one associated with
1719 some particular objfile.
1720
1721 @section Object File Formats
1722 @cindex object file formats
1723
1724 @subsection a.out
1725
1726 @cindex @code{a.out} format
1727 The @code{a.out} format is the original file format for Unix. It
1728 consists of three sections: @code{text}, @code{data}, and @code{bss},
1729 which are for program code, initialized data, and uninitialized data,
1730 respectively.
1731
1732 The @code{a.out} format is so simple that it doesn't have any reserved
1733 place for debugging information. (Hey, the original Unix hackers used
1734 @samp{adb}, which is a machine-language debugger!) The only debugging
1735 format for @code{a.out} is stabs, which is encoded as a set of normal
1736 symbols with distinctive attributes.
1737
1738 The basic @code{a.out} reader is in @file{dbxread.c}.
1739
1740 @subsection COFF
1741
1742 @cindex COFF format
1743 The COFF format was introduced with System V Release 3 (SVR3) Unix.
1744 COFF files may have multiple sections, each prefixed by a header. The
1745 number of sections is limited.
1746
1747 The COFF specification includes support for debugging. Although this
1748 was a step forward, the debugging information was woefully limited. For
1749 instance, it was not possible to represent code that came from an
1750 included file.
1751
1752 The COFF reader is in @file{coffread.c}.
1753
1754 @subsection ECOFF
1755
1756 @cindex ECOFF format
1757 ECOFF is an extended COFF originally introduced for Mips and Alpha
1758 workstations.
1759
1760 The basic ECOFF reader is in @file{mipsread.c}.
1761
1762 @subsection XCOFF
1763
1764 @cindex XCOFF format
1765 The IBM RS/6000 running AIX uses an object file format called XCOFF.
1766 The COFF sections, symbols, and line numbers are used, but debugging
1767 symbols are @code{dbx}-style stabs whose strings are located in the
1768 @code{.debug} section (rather than the string table). For more
1769 information, see @ref{Top,,,stabs,The Stabs Debugging Format}.
1770
1771 The shared library scheme has a clean interface for figuring out what
1772 shared libraries are in use, but the catch is that everything which
1773 refers to addresses (symbol tables and breakpoints at least) needs to be
1774 relocated for both shared libraries and the main executable. At least
1775 using the standard mechanism this can only be done once the program has
1776 been run (or the core file has been read).
1777
1778 @subsection PE
1779
1780 @cindex PE-COFF format
1781 Windows 95 and NT use the PE (@dfn{Portable Executable}) format for their
1782 executables. PE is basically COFF with additional headers.
1783
1784 While BFD includes special PE support, @value{GDBN} needs only the basic
1785 COFF reader.
1786
1787 @subsection ELF
1788
1789 @cindex ELF format
1790 The ELF format came with System V Release 4 (SVR4) Unix. ELF is similar
1791 to COFF in being organized into a number of sections, but it removes
1792 many of COFF's limitations.
1793
1794 The basic ELF reader is in @file{elfread.c}.
1795
1796 @subsection SOM
1797
1798 @cindex SOM format
1799 SOM is HP's object file and debug format (not to be confused with IBM's
1800 SOM, which is a cross-language ABI).
1801
1802 The SOM reader is in @file{hpread.c}.
1803
1804 @subsection Other File Formats
1805
1806 @cindex Netware Loadable Module format
1807 Other file formats that have been supported by @value{GDBN} include Netware
1808 Loadable Modules (@file{nlmread.c}).
1809
1810 @section Debugging File Formats
1811
1812 This section describes characteristics of debugging information that
1813 are independent of the object file format.
1814
1815 @subsection stabs
1816
1817 @cindex stabs debugging info
1818 @code{stabs} started out as special symbols within the @code{a.out}
1819 format. Since then, it has been encapsulated into other file
1820 formats, such as COFF and ELF.
1821
1822 While @file{dbxread.c} does some of the basic stab processing,
1823 including for encapsulated versions, @file{stabsread.c} does
1824 the real work.
1825
1826 @subsection COFF
1827
1828 @cindex COFF debugging info
1829 The basic COFF definition includes debugging information. The level
1830 of support is minimal and non-extensible, and is not often used.
1831
1832 @subsection Mips debug (Third Eye)
1833
1834 @cindex ECOFF debugging info
1835 ECOFF includes a definition of a special debug format.
1836
1837 The file @file{mdebugread.c} implements reading for this format.
1838
1839 @subsection DWARF 1
1840
1841 @cindex DWARF 1 debugging info
1842 DWARF 1 is a debugging format that was originally designed to be
1843 used with ELF in SVR4 systems.
1844
1845 @c GCC_PRODUCER
1846 @c GPLUS_PRODUCER
1847 @c LCC_PRODUCER
1848 @c If defined, these are the producer strings in a DWARF 1 file. All of
1849 @c these have reasonable defaults already.
1850
1851 The DWARF 1 reader is in @file{dwarfread.c}.
1852
1853 @subsection DWARF 2
1854
1855 @cindex DWARF 2 debugging info
1856 DWARF 2 is an improved but incompatible version of DWARF 1.
1857
1858 The DWARF 2 reader is in @file{dwarf2read.c}.
1859
1860 @subsection SOM
1861
1862 @cindex SOM debugging info
1863 Like COFF, the SOM definition includes debugging information.
1864
1865 @section Adding a New Symbol Reader to @value{GDBN}
1866
1867 @cindex adding debugging info reader
1868 If you are using an existing object file format (@code{a.out}, COFF, ELF, etc),
1869 there is probably little to be done.
1870
1871 If you need to add a new object file format, you must first add it to
1872 BFD. This is beyond the scope of this document.
1873
1874 You must then arrange for the BFD code to provide access to the
1875 debugging symbols. Generally @value{GDBN} will have to call swapping routines
1876 from BFD and a few other BFD internal routines to locate the debugging
1877 information. As much as possible, @value{GDBN} should not depend on the BFD
1878 internal data structures.
1879
1880 For some targets (e.g., COFF), there is a special transfer vector used
1881 to call swapping routines, since the external data structures on various
1882 platforms have different sizes and layouts. Specialized routines that
1883 will only ever be implemented by one object file format may be called
1884 directly. This interface should be described in a file
1885 @file{bfd/lib@var{xyz}.h}, which is included by @value{GDBN}.
1886
1887
1888 @node Language Support
1889
1890 @chapter Language Support
1891
1892 @cindex language support
1893 @value{GDBN}'s language support is mainly driven by the symbol reader,
1894 although it is possible for the user to set the source language
1895 manually.
1896
1897 @value{GDBN} chooses the source language by looking at the extension
1898 of the file recorded in the debug info; @file{.c} means C, @file{.f}
1899 means Fortran, etc. It may also use a special-purpose language
1900 identifier if the debug format supports it, like with DWARF.
1901
1902 @section Adding a Source Language to @value{GDBN}
1903
1904 @cindex adding source language
1905 To add other languages to @value{GDBN}'s expression parser, follow the
1906 following steps:
1907
1908 @table @emph
1909 @item Create the expression parser.
1910
1911 @cindex expression parser
1912 This should reside in a file @file{@var{lang}-exp.y}. Routines for
1913 building parsed expressions into a @code{union exp_element} list are in
1914 @file{parse.c}.
1915
1916 @cindex language parser
1917 Since we can't depend upon everyone having Bison, and YACC produces
1918 parsers that define a bunch of global names, the following lines
1919 @strong{must} be included at the top of the YACC parser, to prevent the
1920 various parsers from defining the same global names:
1921
1922 @smallexample
1923 #define yyparse @var{lang}_parse
1924 #define yylex @var{lang}_lex
1925 #define yyerror @var{lang}_error
1926 #define yylval @var{lang}_lval
1927 #define yychar @var{lang}_char
1928 #define yydebug @var{lang}_debug
1929 #define yypact @var{lang}_pact
1930 #define yyr1 @var{lang}_r1
1931 #define yyr2 @var{lang}_r2
1932 #define yydef @var{lang}_def
1933 #define yychk @var{lang}_chk
1934 #define yypgo @var{lang}_pgo
1935 #define yyact @var{lang}_act
1936 #define yyexca @var{lang}_exca
1937 #define yyerrflag @var{lang}_errflag
1938 #define yynerrs @var{lang}_nerrs
1939 @end smallexample
1940
1941 At the bottom of your parser, define a @code{struct language_defn} and
1942 initialize it with the right values for your language. Define an
1943 @code{initialize_@var{lang}} routine and have it call
1944 @samp{add_language(@var{lang}_language_defn)} to tell the rest of @value{GDBN}
1945 that your language exists. You'll need some other supporting variables
1946 and functions, which will be used via pointers from your
1947 @code{@var{lang}_language_defn}. See the declaration of @code{struct
1948 language_defn} in @file{language.h}, and the other @file{*-exp.y} files,
1949 for more information.
1950
1951 @item Add any evaluation routines, if necessary
1952
1953 @cindex expression evaluation routines
1954 @findex evaluate_subexp
1955 @findex prefixify_subexp
1956 @findex length_of_subexp
1957 If you need new opcodes (that represent the operations of the language),
1958 add them to the enumerated type in @file{expression.h}. Add support
1959 code for these operations in the @code{evaluate_subexp} function
1960 defined in the file @file{eval.c}. Add cases
1961 for new opcodes in two functions from @file{parse.c}:
1962 @code{prefixify_subexp} and @code{length_of_subexp}. These compute
1963 the number of @code{exp_element}s that a given operation takes up.
1964
1965 @item Update some existing code
1966
1967 Add an enumerated identifier for your language to the enumerated type
1968 @code{enum language} in @file{defs.h}.
1969
1970 Update the routines in @file{language.c} so your language is included.
1971 These routines include type predicates and such, which (in some cases)
1972 are language dependent. If your language does not appear in the switch
1973 statement, an error is reported.
1974
1975 @vindex current_language
1976 Also included in @file{language.c} is the code that updates the variable
1977 @code{current_language}, and the routines that translate the
1978 @code{language_@var{lang}} enumerated identifier into a printable
1979 string.
1980
1981 @findex _initialize_language
1982 Update the function @code{_initialize_language} to include your
1983 language. This function picks the default language upon startup, so is
1984 dependent upon which languages that @value{GDBN} is built for.
1985
1986 @findex allocate_symtab
1987 Update @code{allocate_symtab} in @file{symfile.c} and/or symbol-reading
1988 code so that the language of each symtab (source file) is set properly.
1989 This is used to determine the language to use at each stack frame level.
1990 Currently, the language is set based upon the extension of the source
1991 file. If the language can be better inferred from the symbol
1992 information, please set the language of the symtab in the symbol-reading
1993 code.
1994
1995 @findex print_subexp
1996 @findex op_print_tab
1997 Add helper code to @code{print_subexp} (in @file{expprint.c}) to handle any new
1998 expression opcodes you have added to @file{expression.h}. Also, add the
1999 printed representations of your operators to @code{op_print_tab}.
2000
2001 @item Add a place of call
2002
2003 @findex parse_exp_1
2004 Add a call to @code{@var{lang}_parse()} and @code{@var{lang}_error} in
2005 @code{parse_exp_1} (defined in @file{parse.c}).
2006
2007 @item Use macros to trim code
2008
2009 @cindex trimming language-dependent code
2010 The user has the option of building @value{GDBN} for some or all of the
2011 languages. If the user decides to build @value{GDBN} for the language
2012 @var{lang}, then every file dependent on @file{language.h} will have the
2013 macro @code{_LANG_@var{lang}} defined in it. Use @code{#ifdef}s to
2014 leave out large routines that the user won't need if he or she is not
2015 using your language.
2016
2017 Note that you do not need to do this in your YACC parser, since if @value{GDBN}
2018 is not build for @var{lang}, then @file{@var{lang}-exp.tab.o} (the
2019 compiled form of your parser) is not linked into @value{GDBN} at all.
2020
2021 See the file @file{configure.in} for how @value{GDBN} is configured
2022 for different languages.
2023
2024 @item Edit @file{Makefile.in}
2025
2026 Add dependencies in @file{Makefile.in}. Make sure you update the macro
2027 variables such as @code{HFILES} and @code{OBJS}, otherwise your code may
2028 not get linked in, or, worse yet, it may not get @code{tar}red into the
2029 distribution!
2030 @end table
2031
2032
2033 @node Host Definition
2034
2035 @chapter Host Definition
2036
2037 With the advent of Autoconf, it's rarely necessary to have host
2038 definition machinery anymore. The following information is provided,
2039 mainly, as an historical reference.
2040
2041 @section Adding a New Host
2042
2043 @cindex adding a new host
2044 @cindex host, adding
2045 @value{GDBN}'s host configuration support normally happens via Autoconf.
2046 New host-specific definitions should not be needed. Older hosts
2047 @value{GDBN} still use the host-specific definitions and files listed
2048 below, but these mostly exist for historical reasons, and will
2049 eventually disappear.
2050
2051 @table @file
2052 @item gdb/config/@var{arch}/@var{xyz}.mh
2053 This file once contained both host and native configuration information
2054 (@pxref{Native Debugging}) for the machine @var{xyz}. The host
2055 configuration information is now handed by Autoconf.
2056
2057 Host configuration information included a definition of
2058 @code{XM_FILE=xm-@var{xyz}.h} and possibly definitions for @code{CC},
2059 @code{SYSV_DEFINE}, @code{XM_CFLAGS}, @code{XM_ADD_FILES},
2060 @code{XM_CLIBS}, @code{XM_CDEPS}, etc.; see @file{Makefile.in}.
2061
2062 New host only configurations do not need this file.
2063
2064 @item gdb/config/@var{arch}/xm-@var{xyz}.h
2065 This file once contained definitions and includes required when hosting
2066 gdb on machine @var{xyz}. Those definitions and includes are now
2067 handled by Autoconf.
2068
2069 New host and native configurations do not need this file.
2070
2071 @emph{Maintainer's note: Some hosts continue to use the @file{xm-xyz.h}
2072 file to define the macros @var{HOST_FLOAT_FORMAT},
2073 @var{HOST_DOUBLE_FORMAT} and @var{HOST_LONG_DOUBLE_FORMAT}. That code
2074 also needs to be replaced with either an Autoconf or run-time test.}
2075
2076 @end table
2077
2078 @subheading Generic Host Support Files
2079
2080 @cindex generic host support
2081 There are some ``generic'' versions of routines that can be used by
2082 various systems. These can be customized in various ways by macros
2083 defined in your @file{xm-@var{xyz}.h} file. If these routines work for
2084 the @var{xyz} host, you can just include the generic file's name (with
2085 @samp{.o}, not @samp{.c}) in @code{XDEPFILES}.
2086
2087 Otherwise, if your machine needs custom support routines, you will need
2088 to write routines that perform the same functions as the generic file.
2089 Put them into @code{@var{xyz}-xdep.c}, and put @code{@var{xyz}-xdep.o}
2090 into @code{XDEPFILES}.
2091
2092 @table @file
2093 @cindex remote debugging support
2094 @cindex serial line support
2095 @item ser-unix.c
2096 This contains serial line support for Unix systems. This is always
2097 included, via the makefile variable @code{SER_HARDWIRE}; override this
2098 variable in the @file{.mh} file to avoid it.
2099
2100 @item ser-go32.c
2101 This contains serial line support for 32-bit programs running under DOS,
2102 using the DJGPP (a.k.a.@: GO32) execution environment.
2103
2104 @cindex TCP remote support
2105 @item ser-tcp.c
2106 This contains generic TCP support using sockets.
2107 @end table
2108
2109 @section Host Conditionals
2110
2111 When @value{GDBN} is configured and compiled, various macros are
2112 defined or left undefined, to control compilation based on the
2113 attributes of the host system. These macros and their meanings (or if
2114 the meaning is not documented here, then one of the source files where
2115 they are used is indicated) are:
2116
2117 @ftable @code
2118 @item @value{GDBN}INIT_FILENAME
2119 The default name of @value{GDBN}'s initialization file (normally
2120 @file{.gdbinit}).
2121
2122 @item NO_STD_REGS
2123 This macro is deprecated.
2124
2125 @item NO_SYS_FILE
2126 Define this if your system does not have a @code{<sys/file.h>}.
2127
2128 @item SIGWINCH_HANDLER
2129 If your host defines @code{SIGWINCH}, you can define this to be the name
2130 of a function to be called if @code{SIGWINCH} is received.
2131
2132 @item SIGWINCH_HANDLER_BODY
2133 Define this to expand into code that will define the function named by
2134 the expansion of @code{SIGWINCH_HANDLER}.
2135
2136 @item ALIGN_STACK_ON_STARTUP
2137 @cindex stack alignment
2138 Define this if your system is of a sort that will crash in
2139 @code{tgetent} if the stack happens not to be longword-aligned when
2140 @code{main} is called. This is a rare situation, but is known to occur
2141 on several different types of systems.
2142
2143 @item CRLF_SOURCE_FILES
2144 @cindex DOS text files
2145 Define this if host files use @code{\r\n} rather than @code{\n} as a
2146 line terminator. This will cause source file listings to omit @code{\r}
2147 characters when printing and it will allow @code{\r\n} line endings of files
2148 which are ``sourced'' by gdb. It must be possible to open files in binary
2149 mode using @code{O_BINARY} or, for fopen, @code{"rb"}.
2150
2151 @item DEFAULT_PROMPT
2152 @cindex prompt
2153 The default value of the prompt string (normally @code{"(gdb) "}).
2154
2155 @item DEV_TTY
2156 @cindex terminal device
2157 The name of the generic TTY device, defaults to @code{"/dev/tty"}.
2158
2159 @item FCLOSE_PROVIDED
2160 Define this if the system declares @code{fclose} in the headers included
2161 in @code{defs.h}. This isn't needed unless your compiler is unusually
2162 anal.
2163
2164 @item FOPEN_RB
2165 Define this if binary files are opened the same way as text files.
2166
2167 @item GETENV_PROVIDED
2168 Define this if the system declares @code{getenv} in its headers included
2169 in @code{defs.h}. This isn't needed unless your compiler is unusually
2170 anal.
2171
2172 @item HAVE_MMAP
2173 @findex mmap
2174 In some cases, use the system call @code{mmap} for reading symbol
2175 tables. For some machines this allows for sharing and quick updates.
2176
2177 @item HAVE_TERMIO
2178 Define this if the host system has @code{termio.h}.
2179
2180 @item INT_MAX
2181 @itemx INT_MIN
2182 @itemx LONG_MAX
2183 @itemx UINT_MAX
2184 @itemx ULONG_MAX
2185 Values for host-side constants.
2186
2187 @item ISATTY
2188 Substitute for isatty, if not available.
2189
2190 @item LONGEST
2191 This is the longest integer type available on the host. If not defined,
2192 it will default to @code{long long} or @code{long}, depending on
2193 @code{CC_HAS_LONG_LONG}.
2194
2195 @item CC_HAS_LONG_LONG
2196 @cindex @code{long long} data type
2197 Define this if the host C compiler supports @code{long long}. This is set
2198 by the @code{configure} script.
2199
2200 @item PRINTF_HAS_LONG_LONG
2201 Define this if the host can handle printing of long long integers via
2202 the printf format conversion specifier @code{ll}. This is set by the
2203 @code{configure} script.
2204
2205 @item HAVE_LONG_DOUBLE
2206 Define this if the host C compiler supports @code{long double}. This is
2207 set by the @code{configure} script.
2208
2209 @item PRINTF_HAS_LONG_DOUBLE
2210 Define this if the host can handle printing of long double float-point
2211 numbers via the printf format conversion specifier @code{Lg}. This is
2212 set by the @code{configure} script.
2213
2214 @item SCANF_HAS_LONG_DOUBLE
2215 Define this if the host can handle the parsing of long double
2216 float-point numbers via the scanf format conversion specifier
2217 @code{Lg}. This is set by the @code{configure} script.
2218
2219 @item LSEEK_NOT_LINEAR
2220 Define this if @code{lseek (n)} does not necessarily move to byte number
2221 @code{n} in the file. This is only used when reading source files. It
2222 is normally faster to define @code{CRLF_SOURCE_FILES} when possible.
2223
2224 @item L_SET
2225 This macro is used as the argument to @code{lseek} (or, most commonly,
2226 @code{bfd_seek}). FIXME, should be replaced by SEEK_SET instead,
2227 which is the POSIX equivalent.
2228
2229 @item MMAP_BASE_ADDRESS
2230 When using HAVE_MMAP, the first mapping should go at this address.
2231
2232 @item MMAP_INCREMENT
2233 when using HAVE_MMAP, this is the increment between mappings.
2234
2235 @item NORETURN
2236 If defined, this should be one or more tokens, such as @code{volatile},
2237 that can be used in both the declaration and definition of functions to
2238 indicate that they never return. The default is already set correctly
2239 if compiling with GCC. This will almost never need to be defined.
2240
2241 @item ATTR_NORETURN
2242 If defined, this should be one or more tokens, such as
2243 @code{__attribute__ ((noreturn))}, that can be used in the declarations
2244 of functions to indicate that they never return. The default is already
2245 set correctly if compiling with GCC. This will almost never need to be
2246 defined.
2247
2248 @item USE_MMALLOC
2249 @findex mmalloc
2250 @value{GDBN} will use the @code{mmalloc} library for memory allocation
2251 for symbol reading if this symbol is defined. Be careful defining it
2252 since there are systems on which @code{mmalloc} does not work for some
2253 reason. One example is the DECstation, where its RPC library can't
2254 cope with our redefinition of @code{malloc} to call @code{mmalloc}.
2255 When defining @code{USE_MMALLOC}, you will also have to set
2256 @code{MMALLOC} in the Makefile, to point to the @code{mmalloc} library. This
2257 define is set when you configure with @samp{--with-mmalloc}.
2258
2259 @item NO_MMCHECK
2260 @findex mmcheck
2261 Define this if you are using @code{mmalloc}, but don't want the overhead
2262 of checking the heap with @code{mmcheck}. Note that on some systems,
2263 the C runtime makes calls to @code{malloc} prior to calling @code{main}, and if
2264 @code{free} is ever called with these pointers after calling
2265 @code{mmcheck} to enable checking, a memory corruption abort is certain
2266 to occur. These systems can still use @code{mmalloc}, but must define
2267 @code{NO_MMCHECK}.
2268
2269 @item MMCHECK_FORCE
2270 Define this to 1 if the C runtime allocates memory prior to
2271 @code{mmcheck} being called, but that memory is never freed so we don't
2272 have to worry about it triggering a memory corruption abort. The
2273 default is 0, which means that @code{mmcheck} will only install the heap
2274 checking functions if there has not yet been any memory allocation
2275 calls, and if it fails to install the functions, @value{GDBN} will issue a
2276 warning. This is currently defined if you configure using
2277 @samp{--with-mmalloc}.
2278
2279 @item NO_SIGINTERRUPT
2280 @findex siginterrupt
2281 Define this to indicate that @code{siginterrupt} is not available.
2282
2283 @item SEEK_CUR
2284 @itemx SEEK_SET
2285 Define these to appropriate value for the system @code{lseek}, if not already
2286 defined.
2287
2288 @item STOP_SIGNAL
2289 This is the signal for stopping @value{GDBN}. Defaults to
2290 @code{SIGTSTP}. (Only redefined for the Convex.)
2291
2292 @item USE_O_NOCTTY
2293 Define this if the interior's tty should be opened with the @code{O_NOCTTY}
2294 flag. (FIXME: This should be a native-only flag, but @file{inflow.c} is
2295 always linked in.)
2296
2297 @item USG
2298 Means that System V (prior to SVR4) include files are in use. (FIXME:
2299 This symbol is abused in @file{infrun.c}, @file{regex.c}, and
2300 @file{utils.c} for other things, at the moment.)
2301
2302 @item lint
2303 Define this to help placate @code{lint} in some situations.
2304
2305 @item volatile
2306 Define this to override the defaults of @code{__volatile__} or
2307 @code{/**/}.
2308 @end ftable
2309
2310
2311 @node Target Architecture Definition
2312
2313 @chapter Target Architecture Definition
2314
2315 @cindex target architecture definition
2316 @value{GDBN}'s target architecture defines what sort of
2317 machine-language programs @value{GDBN} can work with, and how it works
2318 with them.
2319
2320 The target architecture object is implemented as the C structure
2321 @code{struct gdbarch *}. The structure, and its methods, are generated
2322 using the Bourne shell script @file{gdbarch.sh}.
2323
2324 @section Operating System ABI Variant Handling
2325 @cindex OS ABI variants
2326
2327 @value{GDBN} provides a mechanism for handling variations in OS
2328 ABIs. An OS ABI variant may have influence over any number of
2329 variables in the target architecture definition. There are two major
2330 components in the OS ABI mechanism: sniffers and handlers.
2331
2332 A @dfn{sniffer} examines a file matching a BFD architecture/flavour pair
2333 (the architecture may be wildcarded) in an attempt to determine the
2334 OS ABI of that file. Sniffers with a wildcarded architecture are considered
2335 to be @dfn{generic}, while sniffers for a specific architecture are
2336 considered to be @dfn{specific}. A match from a specific sniffer
2337 overrides a match from a generic sniffer. Multiple sniffers for an
2338 architecture/flavour may exist, in order to differentiate between two
2339 different operating systems which use the same basic file format. The
2340 OS ABI framework provides a generic sniffer for ELF-format files which
2341 examines the @code{EI_OSABI} field of the ELF header, as well as note
2342 sections known to be used by several operating systems.
2343
2344 @cindex fine-tuning @code{gdbarch} structure
2345 A @dfn{handler} is used to fine-tune the @code{gdbarch} structure for the
2346 selected OS ABI. There may be only one handler for a given OS ABI
2347 for each BFD architecture.
2348
2349 The following OS ABI variants are defined in @file{osabi.h}:
2350
2351 @table @code
2352
2353 @findex GDB_OSABI_UNKNOWN
2354 @item GDB_OSABI_UNKNOWN
2355 The ABI of the inferior is unknown. The default @code{gdbarch}
2356 settings for the architecture will be used.
2357
2358 @findex GDB_OSABI_SVR4
2359 @item GDB_OSABI_SVR4
2360 UNIX System V Release 4
2361
2362 @findex GDB_OSABI_HURD
2363 @item GDB_OSABI_HURD
2364 GNU using the Hurd kernel
2365
2366 @findex GDB_OSABI_SOLARIS
2367 @item GDB_OSABI_SOLARIS
2368 Sun Solaris
2369
2370 @findex GDB_OSABI_OSF1
2371 @item GDB_OSABI_OSF1
2372 OSF/1, including Digital UNIX and Compaq Tru64 UNIX
2373
2374 @findex GDB_OSABI_LINUX
2375 @item GDB_OSABI_LINUX
2376 GNU using the Linux kernel
2377
2378 @findex GDB_OSABI_FREEBSD_AOUT
2379 @item GDB_OSABI_FREEBSD_AOUT
2380 FreeBSD using the a.out executable format
2381
2382 @findex GDB_OSABI_FREEBSD_ELF
2383 @item GDB_OSABI_FREEBSD_ELF
2384 FreeBSD using the ELF executable format
2385
2386 @findex GDB_OSABI_NETBSD_AOUT
2387 @item GDB_OSABI_NETBSD_AOUT
2388 NetBSD using the a.out executable format
2389
2390 @findex GDB_OSABI_NETBSD_ELF
2391 @item GDB_OSABI_NETBSD_ELF
2392 NetBSD using the ELF executable format
2393
2394 @findex GDB_OSABI_WINCE
2395 @item GDB_OSABI_WINCE
2396 Windows CE
2397
2398 @findex GDB_OSABI_GO32
2399 @item GDB_OSABI_GO32
2400 DJGPP
2401
2402 @findex GDB_OSABI_NETWARE
2403 @item GDB_OSABI_NETWARE
2404 Novell NetWare
2405
2406 @findex GDB_OSABI_ARM_EABI_V1
2407 @item GDB_OSABI_ARM_EABI_V1
2408 ARM Embedded ABI version 1
2409
2410 @findex GDB_OSABI_ARM_EABI_V2
2411 @item GDB_OSABI_ARM_EABI_V2
2412 ARM Embedded ABI version 2
2413
2414 @findex GDB_OSABI_ARM_APCS
2415 @item GDB_OSABI_ARM_APCS
2416 Generic ARM Procedure Call Standard
2417
2418 @end table
2419
2420 Here are the functions that make up the OS ABI framework:
2421
2422 @deftypefun const char *gdbarch_osabi_name (enum gdb_osabi @var{osabi})
2423 Return the name of the OS ABI corresponding to @var{osabi}.
2424 @end deftypefun
2425
2426 @deftypefun void gdbarch_register_osabi (enum bfd_architecture @var{arch}, unsigned long @var{machine}, enum gdb_osabi @var{osabi}, void (*@var{init_osabi})(struct gdbarch_info @var{info}, struct gdbarch *@var{gdbarch}))
2427 Register the OS ABI handler specified by @var{init_osabi} for the
2428 architecture, machine type and OS ABI specified by @var{arch},
2429 @var{machine} and @var{osabi}. In most cases, a value of zero for the
2430 machine type, which implies the architecture's default machine type,
2431 will suffice.
2432 @end deftypefun
2433
2434 @deftypefun void gdbarch_register_osabi_sniffer (enum bfd_architecture @var{arch}, enum bfd_flavour @var{flavour}, enum gdb_osabi (*@var{sniffer})(bfd *@var{abfd}))
2435 Register the OS ABI file sniffer specified by @var{sniffer} for the
2436 BFD architecture/flavour pair specified by @var{arch} and @var{flavour}.
2437 If @var{arch} is @code{bfd_arch_unknown}, the sniffer is considered to
2438 be generic, and is allowed to examine @var{flavour}-flavoured files for
2439 any architecture.
2440 @end deftypefun
2441
2442 @deftypefun enum gdb_osabi gdbarch_lookup_osabi (bfd *@var{abfd})
2443 Examine the file described by @var{abfd} to determine its OS ABI.
2444 The value @code{GDB_OSABI_UNKNOWN} is returned if the OS ABI cannot
2445 be determined.
2446 @end deftypefun
2447
2448 @deftypefun void gdbarch_init_osabi (struct gdbarch info @var{info}, struct gdbarch *@var{gdbarch}, enum gdb_osabi @var{osabi})
2449 Invoke the OS ABI handler corresponding to @var{osabi} to fine-tune the
2450 @code{gdbarch} structure specified by @var{gdbarch}. If a handler
2451 corresponding to @var{osabi} has not been registered for @var{gdbarch}'s
2452 architecture, a warning will be issued and the debugging session will continue
2453 with the defaults already established for @var{gdbarch}.
2454 @end deftypefun
2455
2456 @section Registers and Memory
2457
2458 @value{GDBN}'s model of the target machine is rather simple.
2459 @value{GDBN} assumes the machine includes a bank of registers and a
2460 block of memory. Each register may have a different size.
2461
2462 @value{GDBN} does not have a magical way to match up with the
2463 compiler's idea of which registers are which; however, it is critical
2464 that they do match up accurately. The only way to make this work is
2465 to get accurate information about the order that the compiler uses,
2466 and to reflect that in the @code{REGISTER_NAME} and related macros.
2467
2468 @value{GDBN} can handle big-endian, little-endian, and bi-endian architectures.
2469
2470 @section Pointers Are Not Always Addresses
2471 @cindex pointer representation
2472 @cindex address representation
2473 @cindex word-addressed machines
2474 @cindex separate data and code address spaces
2475 @cindex spaces, separate data and code address
2476 @cindex address spaces, separate data and code
2477 @cindex code pointers, word-addressed
2478 @cindex converting between pointers and addresses
2479 @cindex D10V addresses
2480
2481 On almost all 32-bit architectures, the representation of a pointer is
2482 indistinguishable from the representation of some fixed-length number
2483 whose value is the byte address of the object pointed to. On such
2484 machines, the words ``pointer'' and ``address'' can be used interchangeably.
2485 However, architectures with smaller word sizes are often cramped for
2486 address space, so they may choose a pointer representation that breaks this
2487 identity, and allows a larger code address space.
2488
2489 For example, the Mitsubishi D10V is a 16-bit VLIW processor whose
2490 instructions are 32 bits long@footnote{Some D10V instructions are
2491 actually pairs of 16-bit sub-instructions. However, since you can't
2492 jump into the middle of such a pair, code addresses can only refer to
2493 full 32 bit instructions, which is what matters in this explanation.}.
2494 If the D10V used ordinary byte addresses to refer to code locations,
2495 then the processor would only be able to address 64kb of instructions.
2496 However, since instructions must be aligned on four-byte boundaries, the
2497 low two bits of any valid instruction's byte address are always
2498 zero---byte addresses waste two bits. So instead of byte addresses,
2499 the D10V uses word addresses---byte addresses shifted right two bits---to
2500 refer to code. Thus, the D10V can use 16-bit words to address 256kb of
2501 code space.
2502
2503 However, this means that code pointers and data pointers have different
2504 forms on the D10V. The 16-bit word @code{0xC020} refers to byte address
2505 @code{0xC020} when used as a data address, but refers to byte address
2506 @code{0x30080} when used as a code address.
2507
2508 (The D10V also uses separate code and data address spaces, which also
2509 affects the correspondence between pointers and addresses, but we're
2510 going to ignore that here; this example is already too long.)
2511
2512 To cope with architectures like this---the D10V is not the only
2513 one!---@value{GDBN} tries to distinguish between @dfn{addresses}, which are
2514 byte numbers, and @dfn{pointers}, which are the target's representation
2515 of an address of a particular type of data. In the example above,
2516 @code{0xC020} is the pointer, which refers to one of the addresses
2517 @code{0xC020} or @code{0x30080}, depending on the type imposed upon it.
2518 @value{GDBN} provides functions for turning a pointer into an address
2519 and vice versa, in the appropriate way for the current architecture.
2520
2521 Unfortunately, since addresses and pointers are identical on almost all
2522 processors, this distinction tends to bit-rot pretty quickly. Thus,
2523 each time you port @value{GDBN} to an architecture which does
2524 distinguish between pointers and addresses, you'll probably need to
2525 clean up some architecture-independent code.
2526
2527 Here are functions which convert between pointers and addresses:
2528
2529 @deftypefun CORE_ADDR extract_typed_address (void *@var{buf}, struct type *@var{type})
2530 Treat the bytes at @var{buf} as a pointer or reference of type
2531 @var{type}, and return the address it represents, in a manner
2532 appropriate for the current architecture. This yields an address
2533 @value{GDBN} can use to read target memory, disassemble, etc. Note that
2534 @var{buf} refers to a buffer in @value{GDBN}'s memory, not the
2535 inferior's.
2536
2537 For example, if the current architecture is the Intel x86, this function
2538 extracts a little-endian integer of the appropriate length from
2539 @var{buf} and returns it. However, if the current architecture is the
2540 D10V, this function will return a 16-bit integer extracted from
2541 @var{buf}, multiplied by four if @var{type} is a pointer to a function.
2542
2543 If @var{type} is not a pointer or reference type, then this function
2544 will signal an internal error.
2545 @end deftypefun
2546
2547 @deftypefun CORE_ADDR store_typed_address (void *@var{buf}, struct type *@var{type}, CORE_ADDR @var{addr})
2548 Store the address @var{addr} in @var{buf}, in the proper format for a
2549 pointer of type @var{type} in the current architecture. Note that
2550 @var{buf} refers to a buffer in @value{GDBN}'s memory, not the
2551 inferior's.
2552
2553 For example, if the current architecture is the Intel x86, this function
2554 stores @var{addr} unmodified as a little-endian integer of the
2555 appropriate length in @var{buf}. However, if the current architecture
2556 is the D10V, this function divides @var{addr} by four if @var{type} is
2557 a pointer to a function, and then stores it in @var{buf}.
2558
2559 If @var{type} is not a pointer or reference type, then this function
2560 will signal an internal error.
2561 @end deftypefun
2562
2563 @deftypefun CORE_ADDR value_as_address (struct value *@var{val})
2564 Assuming that @var{val} is a pointer, return the address it represents,
2565 as appropriate for the current architecture.
2566
2567 This function actually works on integral values, as well as pointers.
2568 For pointers, it performs architecture-specific conversions as
2569 described above for @code{extract_typed_address}.
2570 @end deftypefun
2571
2572 @deftypefun CORE_ADDR value_from_pointer (struct type *@var{type}, CORE_ADDR @var{addr})
2573 Create and return a value representing a pointer of type @var{type} to
2574 the address @var{addr}, as appropriate for the current architecture.
2575 This function performs architecture-specific conversions as described
2576 above for @code{store_typed_address}.
2577 @end deftypefun
2578
2579
2580 @value{GDBN} also provides functions that do the same tasks, but assume
2581 that pointers are simply byte addresses; they aren't sensitive to the
2582 current architecture, beyond knowing the appropriate endianness.
2583
2584 @deftypefun CORE_ADDR extract_address (void *@var{addr}, int len)
2585 Extract a @var{len}-byte number from @var{addr} in the appropriate
2586 endianness for the current architecture, and return it. Note that
2587 @var{addr} refers to @value{GDBN}'s memory, not the inferior's.
2588
2589 This function should only be used in architecture-specific code; it
2590 doesn't have enough information to turn bits into a true address in the
2591 appropriate way for the current architecture. If you can, use
2592 @code{extract_typed_address} instead.
2593 @end deftypefun
2594
2595 @deftypefun void store_address (void *@var{addr}, int @var{len}, LONGEST @var{val})
2596 Store @var{val} at @var{addr} as a @var{len}-byte integer, in the
2597 appropriate endianness for the current architecture. Note that
2598 @var{addr} refers to a buffer in @value{GDBN}'s memory, not the
2599 inferior's.
2600
2601 This function should only be used in architecture-specific code; it
2602 doesn't have enough information to turn a true address into bits in the
2603 appropriate way for the current architecture. If you can, use
2604 @code{store_typed_address} instead.
2605 @end deftypefun
2606
2607
2608 Here are some macros which architectures can define to indicate the
2609 relationship between pointers and addresses. These have default
2610 definitions, appropriate for architectures on which all pointers are
2611 simple unsigned byte addresses.
2612
2613 @deftypefn {Target Macro} CORE_ADDR POINTER_TO_ADDRESS (struct type *@var{type}, char *@var{buf})
2614 Assume that @var{buf} holds a pointer of type @var{type}, in the
2615 appropriate format for the current architecture. Return the byte
2616 address the pointer refers to.
2617
2618 This function may safely assume that @var{type} is either a pointer or a
2619 C@t{++} reference type.
2620 @end deftypefn
2621
2622 @deftypefn {Target Macro} void ADDRESS_TO_POINTER (struct type *@var{type}, char *@var{buf}, CORE_ADDR @var{addr})
2623 Store in @var{buf} a pointer of type @var{type} representing the address
2624 @var{addr}, in the appropriate format for the current architecture.
2625
2626 This function may safely assume that @var{type} is either a pointer or a
2627 C@t{++} reference type.
2628 @end deftypefn
2629
2630 @section Address Classes
2631 @cindex address classes
2632 @cindex DW_AT_byte_size
2633 @cindex DW_AT_address_class
2634
2635 Sometimes information about different kinds of addresses is available
2636 via the debug information. For example, some programming environments
2637 define addresses of several different sizes. If the debug information
2638 distinguishes these kinds of address classes through either the size
2639 info (e.g, @code{DW_AT_byte_size} in @w{DWARF 2}) or through an explicit
2640 address class attribute (e.g, @code{DW_AT_address_class} in @w{DWARF 2}), the
2641 following macros should be defined in order to disambiguate these
2642 types within @value{GDBN} as well as provide the added information to
2643 a @value{GDBN} user when printing type expressions.
2644
2645 @deftypefn {Target Macro} int ADDRESS_CLASS_TYPE_FLAGS (int @var{byte_size}, int @var{dwarf2_addr_class})
2646 Returns the type flags needed to construct a pointer type whose size
2647 is @var{byte_size} and whose address class is @var{dwarf2_addr_class}.
2648 This function is normally called from within a symbol reader. See
2649 @file{dwarf2read.c}.
2650 @end deftypefn
2651
2652 @deftypefn {Target Macro} char *ADDRESS_CLASS_TYPE_FLAGS_TO_NAME (int @var{type_flags})
2653 Given the type flags representing an address class qualifier, return
2654 its name.
2655 @end deftypefn
2656 @deftypefn {Target Macro} int ADDRESS_CLASS_NAME_to_TYPE_FLAGS (int @var{name}, int *var{type_flags_ptr})
2657 Given an address qualifier name, set the @code{int} refererenced by @var{type_flags_ptr} to the type flags
2658 for that address class qualifier.
2659 @end deftypefn
2660
2661 Since the need for address classes is rather rare, none of
2662 the address class macros defined by default. Predicate
2663 macros are provided to detect when they are defined.
2664
2665 Consider a hypothetical architecture in which addresses are normally
2666 32-bits wide, but 16-bit addresses are also supported. Furthermore,
2667 suppose that the @w{DWARF 2} information for this architecture simply
2668 uses a @code{DW_AT_byte_size} value of 2 to indicate the use of one
2669 of these "short" pointers. The following functions could be defined
2670 to implement the address class macros:
2671
2672 @smallexample
2673 somearch_address_class_type_flags (int byte_size,
2674 int dwarf2_addr_class)
2675 @{
2676 if (byte_size == 2)
2677 return TYPE_FLAG_ADDRESS_CLASS_1;
2678 else
2679 return 0;
2680 @}
2681
2682 static char *
2683 somearch_address_class_type_flags_to_name (int type_flags)
2684 @{
2685 if (type_flags & TYPE_FLAG_ADDRESS_CLASS_1)
2686 return "short";
2687 else
2688 return NULL;
2689 @}
2690
2691 int
2692 somearch_address_class_name_to_type_flags (char *name,
2693 int *type_flags_ptr)
2694 @{
2695 if (strcmp (name, "short") == 0)
2696 @{
2697 *type_flags_ptr = TYPE_FLAG_ADDRESS_CLASS_1;
2698 return 1;
2699 @}
2700 else
2701 return 0;
2702 @}
2703 @end smallexample
2704
2705 The qualifier @code{@@short} is used in @value{GDBN}'s type expressions
2706 to indicate the presence of one of these "short" pointers. E.g, if
2707 the debug information indicates that @code{short_ptr_var} is one of these
2708 short pointers, @value{GDBN} might show the following behavior:
2709
2710 @smallexample
2711 (gdb) ptype short_ptr_var
2712 type = int * @@short
2713 @end smallexample
2714
2715
2716 @section Raw and Virtual Register Representations
2717 @cindex raw register representation
2718 @cindex virtual register representation
2719 @cindex representations, raw and virtual registers
2720
2721 @emph{Maintainer note: This section is pretty much obsolete. The
2722 functionality described here has largely been replaced by
2723 pseudo-registers and the mechanisms described in @ref{Target
2724 Architecture Definition, , Using Different Register and Memory Data
2725 Representations}. See also @uref{http://www.gnu.org/software/gdb/bugs/,
2726 Bug Tracking Database} and
2727 @uref{http://sources.redhat.com/gdb/current/ari/, ARI Index} for more
2728 up-to-date information.}
2729
2730 Some architectures use one representation for a value when it lives in a
2731 register, but use a different representation when it lives in memory.
2732 In @value{GDBN}'s terminology, the @dfn{raw} representation is the one used in
2733 the target registers, and the @dfn{virtual} representation is the one
2734 used in memory, and within @value{GDBN} @code{struct value} objects.
2735
2736 @emph{Maintainer note: Notice that the same mechanism is being used to
2737 both convert a register to a @code{struct value} and alternative
2738 register forms.}
2739
2740 For almost all data types on almost all architectures, the virtual and
2741 raw representations are identical, and no special handling is needed.
2742 However, they do occasionally differ. For example:
2743
2744 @itemize @bullet
2745 @item
2746 The x86 architecture supports an 80-bit @code{long double} type. However, when
2747 we store those values in memory, they occupy twelve bytes: the
2748 floating-point number occupies the first ten, and the final two bytes
2749 are unused. This keeps the values aligned on four-byte boundaries,
2750 allowing more efficient access. Thus, the x86 80-bit floating-point
2751 type is the raw representation, and the twelve-byte loosely-packed
2752 arrangement is the virtual representation.
2753
2754 @item
2755 Some 64-bit MIPS targets present 32-bit registers to @value{GDBN} as 64-bit
2756 registers, with garbage in their upper bits. @value{GDBN} ignores the top 32
2757 bits. Thus, the 64-bit form, with garbage in the upper 32 bits, is the
2758 raw representation, and the trimmed 32-bit representation is the
2759 virtual representation.
2760 @end itemize
2761
2762 In general, the raw representation is determined by the architecture, or
2763 @value{GDBN}'s interface to the architecture, while the virtual representation
2764 can be chosen for @value{GDBN}'s convenience. @value{GDBN}'s register file,
2765 @code{registers}, holds the register contents in raw format, and the
2766 @value{GDBN} remote protocol transmits register values in raw format.
2767
2768 Your architecture may define the following macros to request
2769 conversions between the raw and virtual format:
2770
2771 @deftypefn {Target Macro} int REGISTER_CONVERTIBLE (int @var{reg})
2772 Return non-zero if register number @var{reg}'s value needs different raw
2773 and virtual formats.
2774
2775 You should not use @code{REGISTER_CONVERT_TO_VIRTUAL} for a register
2776 unless this macro returns a non-zero value for that register.
2777 @end deftypefn
2778
2779 @deftypefn {Target Macro} int REGISTER_RAW_SIZE (int @var{reg})
2780 The size of register number @var{reg}'s raw value. This is the number
2781 of bytes the register will occupy in @code{registers}, or in a @value{GDBN}
2782 remote protocol packet.
2783 @end deftypefn
2784
2785 @deftypefn {Target Macro} int REGISTER_VIRTUAL_SIZE (int @var{reg})
2786 The size of register number @var{reg}'s value, in its virtual format.
2787 This is the size a @code{struct value}'s buffer will have, holding that
2788 register's value.
2789 @end deftypefn
2790
2791 @deftypefn {Target Macro} struct type *REGISTER_VIRTUAL_TYPE (int @var{reg})
2792 This is the type of the virtual representation of register number
2793 @var{reg}. Note that there is no need for a macro giving a type for the
2794 register's raw form; once the register's value has been obtained, @value{GDBN}
2795 always uses the virtual form.
2796 @end deftypefn
2797
2798 @deftypefn {Target Macro} void REGISTER_CONVERT_TO_VIRTUAL (int @var{reg}, struct type *@var{type}, char *@var{from}, char *@var{to})
2799 Convert the value of register number @var{reg} to @var{type}, which
2800 should always be @code{REGISTER_VIRTUAL_TYPE (@var{reg})}. The buffer
2801 at @var{from} holds the register's value in raw format; the macro should
2802 convert the value to virtual format, and place it at @var{to}.
2803
2804 Note that @code{REGISTER_CONVERT_TO_VIRTUAL} and
2805 @code{REGISTER_CONVERT_TO_RAW} take their @var{reg} and @var{type}
2806 arguments in different orders.
2807
2808 You should only use @code{REGISTER_CONVERT_TO_VIRTUAL} with registers
2809 for which the @code{REGISTER_CONVERTIBLE} macro returns a non-zero
2810 value.
2811 @end deftypefn
2812
2813 @deftypefn {Target Macro} void REGISTER_CONVERT_TO_RAW (struct type *@var{type}, int @var{reg}, char *@var{from}, char *@var{to})
2814 Convert the value of register number @var{reg} to @var{type}, which
2815 should always be @code{REGISTER_VIRTUAL_TYPE (@var{reg})}. The buffer
2816 at @var{from} holds the register's value in raw format; the macro should
2817 convert the value to virtual format, and place it at @var{to}.
2818
2819 Note that REGISTER_CONVERT_TO_VIRTUAL and REGISTER_CONVERT_TO_RAW take
2820 their @var{reg} and @var{type} arguments in different orders.
2821 @end deftypefn
2822
2823
2824 @section Using Different Register and Memory Data Representations
2825 @cindex register representation
2826 @cindex memory representation
2827 @cindex representations, register and memory
2828 @cindex register data formats, converting
2829 @cindex @code{struct value}, converting register contents to
2830
2831 @emph{Maintainer's note: The way GDB manipulates registers is undergoing
2832 significant change. Many of the macros and functions refered to in this
2833 section are likely to be subject to further revision. See
2834 @uref{http://sources.redhat.com/gdb/current/ari/, A.R. Index} and
2835 @uref{http://www.gnu.org/software/gdb/bugs, Bug Tracking Database} for
2836 further information. cagney/2002-05-06.}
2837
2838 Some architectures can represent a data object in a register using a
2839 form that is different to the objects more normal memory representation.
2840 For example:
2841
2842 @itemize @bullet
2843
2844 @item
2845 The Alpha architecture can represent 32 bit integer values in
2846 floating-point registers.
2847
2848 @item
2849 The x86 architecture supports 80-bit floating-point registers. The
2850 @code{long double} data type occupies 96 bits in memory but only 80 bits
2851 when stored in a register.
2852
2853 @end itemize
2854
2855 In general, the register representation of a data type is determined by
2856 the architecture, or @value{GDBN}'s interface to the architecture, while
2857 the memory representation is determined by the Application Binary
2858 Interface.
2859
2860 For almost all data types on almost all architectures, the two
2861 representations are identical, and no special handling is needed.
2862 However, they do occasionally differ. Your architecture may define the
2863 following macros to request conversions between the register and memory
2864 representations of a data type:
2865
2866 @deftypefn {Target Macro} int CONVERT_REGISTER_P (int @var{reg})
2867 Return non-zero if the representation of a data value stored in this
2868 register may be different to the representation of that same data value
2869 when stored in memory.
2870
2871 When non-zero, the macros @code{REGISTER_TO_VALUE} and
2872 @code{VALUE_TO_REGISTER} are used to perform any necessary conversion.
2873 @end deftypefn
2874
2875 @deftypefn {Target Macro} void REGISTER_TO_VALUE (int @var{reg}, struct type *@var{type}, char *@var{from}, char *@var{to})
2876 Convert the value of register number @var{reg} to a data object of type
2877 @var{type}. The buffer at @var{from} holds the register's value in raw
2878 format; the converted value should be placed in the buffer at @var{to}.
2879
2880 Note that @code{REGISTER_TO_VALUE} and @code{VALUE_TO_REGISTER} take
2881 their @var{reg} and @var{type} arguments in different orders.
2882
2883 You should only use @code{REGISTER_TO_VALUE} with registers for which
2884 the @code{CONVERT_REGISTER_P} macro returns a non-zero value.
2885 @end deftypefn
2886
2887 @deftypefn {Target Macro} void VALUE_TO_REGISTER (struct type *@var{type}, int @var{reg}, char *@var{from}, char *@var{to})
2888 Convert a data value of type @var{type} to register number @var{reg}'
2889 raw format.
2890
2891 Note that @code{REGISTER_TO_VALUE} and @code{VALUE_TO_REGISTER} take
2892 their @var{reg} and @var{type} arguments in different orders.
2893
2894 You should only use @code{VALUE_TO_REGISTER} with registers for which
2895 the @code{CONVERT_REGISTER_P} macro returns a non-zero value.
2896 @end deftypefn
2897
2898 @deftypefn {Target Macro} void REGISTER_CONVERT_TO_TYPE (int @var{regnum}, struct type *@var{type}, char *@var{buf})
2899 See @file{mips-tdep.c}. It does not do what you want.
2900 @end deftypefn
2901
2902
2903 @section Frame Interpretation
2904
2905 @section Inferior Call Setup
2906
2907 @section Compiler Characteristics
2908
2909 @section Target Conditionals
2910
2911 This section describes the macros that you can use to define the target
2912 machine.
2913
2914 @table @code
2915
2916 @item ADDR_BITS_REMOVE (addr)
2917 @findex ADDR_BITS_REMOVE
2918 If a raw machine instruction address includes any bits that are not
2919 really part of the address, then define this macro to expand into an
2920 expression that zeroes those bits in @var{addr}. This is only used for
2921 addresses of instructions, and even then not in all contexts.
2922
2923 For example, the two low-order bits of the PC on the Hewlett-Packard PA
2924 2.0 architecture contain the privilege level of the corresponding
2925 instruction. Since instructions must always be aligned on four-byte
2926 boundaries, the processor masks out these bits to generate the actual
2927 address of the instruction. ADDR_BITS_REMOVE should filter out these
2928 bits with an expression such as @code{((addr) & ~3)}.
2929
2930 @item ADDRESS_CLASS_NAME_TO_TYPE_FLAGS (@var{name}, @var{type_flags_ptr})
2931 @findex ADDRESS_CLASS_NAME_TO_TYPE_FLAGS
2932 If @var{name} is a valid address class qualifier name, set the @code{int}
2933 referenced by @var{type_flags_ptr} to the mask representing the qualifier
2934 and return 1. If @var{name} is not a valid address class qualifier name,
2935 return 0.
2936
2937 The value for @var{type_flags_ptr} should be one of
2938 @code{TYPE_FLAG_ADDRESS_CLASS_1}, @code{TYPE_FLAG_ADDRESS_CLASS_2}, or
2939 possibly some combination of these values or'd together.
2940 @xref{Target Architecture Definition, , Address Classes}.
2941
2942 @item ADDRESS_CLASS_NAME_TO_TYPE_FLAGS_P ()
2943 @findex ADDRESS_CLASS_NAME_TO_TYPE_FLAGS_P
2944 Predicate which indicates whether @code{ADDRESS_CLASS_NAME_TO_TYPE_FLAGS}
2945 has been defined.
2946
2947 @item ADDRESS_CLASS_TYPE_FLAGS (@var{byte_size}, @var{dwarf2_addr_class})
2948 @findex ADDRESS_CLASS_TYPE_FLAGS (@var{byte_size}, @var{dwarf2_addr_class})
2949 Given a pointers byte size (as described by the debug information) and
2950 the possible @code{DW_AT_address_class} value, return the type flags
2951 used by @value{GDBN} to represent this address class. The value
2952 returned should be one of @code{TYPE_FLAG_ADDRESS_CLASS_1},
2953 @code{TYPE_FLAG_ADDRESS_CLASS_2}, or possibly some combination of these
2954 values or'd together.
2955 @xref{Target Architecture Definition, , Address Classes}.
2956
2957 @item ADDRESS_CLASS_TYPE_FLAGS_P ()
2958 @findex ADDRESS_CLASS_TYPE_FLAGS_P
2959 Predicate which indicates whether @code{ADDRESS_CLASS_TYPE_FLAGS} has
2960 been defined.
2961
2962 @item ADDRESS_CLASS_TYPE_FLAGS_TO_NAME (@var{type_flags})
2963 @findex ADDRESS_CLASS_TYPE_FLAGS_TO_NAME
2964 Return the name of the address class qualifier associated with the type
2965 flags given by @var{type_flags}.
2966
2967 @item ADDRESS_CLASS_TYPE_FLAGS_TO_NAME_P ()
2968 @findex ADDRESS_CLASS_TYPE_FLAGS_TO_NAME_P
2969 Predicate which indicates whether @code{ADDRESS_CLASS_TYPE_FLAGS_TO_NAME} has
2970 been defined.
2971 @xref{Target Architecture Definition, , Address Classes}.
2972
2973 @item ADDRESS_TO_POINTER (@var{type}, @var{buf}, @var{addr})
2974 @findex ADDRESS_TO_POINTER
2975 Store in @var{buf} a pointer of type @var{type} representing the address
2976 @var{addr}, in the appropriate format for the current architecture.
2977 This macro may safely assume that @var{type} is either a pointer or a
2978 C@t{++} reference type.
2979 @xref{Target Architecture Definition, , Pointers Are Not Always Addresses}.
2980
2981 @item BELIEVE_PCC_PROMOTION
2982 @findex BELIEVE_PCC_PROMOTION
2983 Define if the compiler promotes a @code{short} or @code{char}
2984 parameter to an @code{int}, but still reports the parameter as its
2985 original type, rather than the promoted type.
2986
2987 @item BELIEVE_PCC_PROMOTION_TYPE
2988 @findex BELIEVE_PCC_PROMOTION_TYPE
2989 Define this if @value{GDBN} should believe the type of a @code{short}
2990 argument when compiled by @code{pcc}, but look within a full int space to get
2991 its value. Only defined for Sun-3 at present.
2992
2993 @item BITS_BIG_ENDIAN
2994 @findex BITS_BIG_ENDIAN
2995 Define this if the numbering of bits in the targets does @strong{not} match the
2996 endianness of the target byte order. A value of 1 means that the bits
2997 are numbered in a big-endian bit order, 0 means little-endian.
2998
2999 @item BREAKPOINT
3000 @findex BREAKPOINT
3001 This is the character array initializer for the bit pattern to put into
3002 memory where a breakpoint is set. Although it's common to use a trap
3003 instruction for a breakpoint, it's not required; for instance, the bit
3004 pattern could be an invalid instruction. The breakpoint must be no
3005 longer than the shortest instruction of the architecture.
3006
3007 @code{BREAKPOINT} has been deprecated in favor of
3008 @code{BREAKPOINT_FROM_PC}.
3009
3010 @item BIG_BREAKPOINT
3011 @itemx LITTLE_BREAKPOINT
3012 @findex LITTLE_BREAKPOINT
3013 @findex BIG_BREAKPOINT
3014 Similar to BREAKPOINT, but used for bi-endian targets.
3015
3016 @code{BIG_BREAKPOINT} and @code{LITTLE_BREAKPOINT} have been deprecated in
3017 favor of @code{BREAKPOINT_FROM_PC}.
3018
3019 @item REMOTE_BREAKPOINT
3020 @itemx LITTLE_REMOTE_BREAKPOINT
3021 @itemx BIG_REMOTE_BREAKPOINT
3022 @findex BIG_REMOTE_BREAKPOINT
3023 @findex LITTLE_REMOTE_BREAKPOINT
3024 @findex REMOTE_BREAKPOINT
3025 Similar to BREAKPOINT, but used for remote targets.
3026
3027 @code{BIG_REMOTE_BREAKPOINT} and @code{LITTLE_REMOTE_BREAKPOINT} have been
3028 deprecated in favor of @code{BREAKPOINT_FROM_PC}.
3029
3030 @item BREAKPOINT_FROM_PC (@var{pcptr}, @var{lenptr})
3031 @findex BREAKPOINT_FROM_PC
3032 Use the program counter to determine the contents and size of a
3033 breakpoint instruction. It returns a pointer to a string of bytes
3034 that encode a breakpoint instruction, stores the length of the string
3035 to *@var{lenptr}, and adjusts pc (if necessary) to point to the actual
3036 memory location where the breakpoint should be inserted.
3037
3038 Although it is common to use a trap instruction for a breakpoint, it's
3039 not required; for instance, the bit pattern could be an invalid
3040 instruction. The breakpoint must be no longer than the shortest
3041 instruction of the architecture.
3042
3043 Replaces all the other @var{BREAKPOINT} macros.
3044
3045 @item MEMORY_INSERT_BREAKPOINT (@var{addr}, @var{contents_cache})
3046 @itemx MEMORY_REMOVE_BREAKPOINT (@var{addr}, @var{contents_cache})
3047 @findex MEMORY_REMOVE_BREAKPOINT
3048 @findex MEMORY_INSERT_BREAKPOINT
3049 Insert or remove memory based breakpoints. Reasonable defaults
3050 (@code{default_memory_insert_breakpoint} and
3051 @code{default_memory_remove_breakpoint} respectively) have been
3052 provided so that it is not necessary to define these for most
3053 architectures. Architectures which may want to define
3054 @code{MEMORY_INSERT_BREAKPOINT} and @code{MEMORY_REMOVE_BREAKPOINT} will
3055 likely have instructions that are oddly sized or are not stored in a
3056 conventional manner.
3057
3058 It may also be desirable (from an efficiency standpoint) to define
3059 custom breakpoint insertion and removal routines if
3060 @code{BREAKPOINT_FROM_PC} needs to read the target's memory for some
3061 reason.
3062
3063 @item CALL_DUMMY_P
3064 @findex CALL_DUMMY_P
3065 A C expression that is non-zero when the target supports inferior function
3066 calls.
3067
3068 @item CALL_DUMMY_WORDS
3069 @findex CALL_DUMMY_WORDS
3070 Pointer to an array of @code{LONGEST} words of data containing
3071 host-byte-ordered @code{REGISTER_BYTES} sized values that partially
3072 specify the sequence of instructions needed for an inferior function
3073 call.
3074
3075 Should be deprecated in favor of a macro that uses target-byte-ordered
3076 data.
3077
3078 @item SIZEOF_CALL_DUMMY_WORDS
3079 @findex SIZEOF_CALL_DUMMY_WORDS
3080 The size of @code{CALL_DUMMY_WORDS}. When @code{CALL_DUMMY_P} this must
3081 return a positive value. See also @code{CALL_DUMMY_LENGTH}.
3082
3083 @item CALL_DUMMY
3084 @findex CALL_DUMMY
3085 A static initializer for @code{CALL_DUMMY_WORDS}. Deprecated.
3086
3087 @item CALL_DUMMY_LOCATION
3088 @findex CALL_DUMMY_LOCATION
3089 See the file @file{inferior.h}.
3090
3091 @item CALL_DUMMY_STACK_ADJUST
3092 @findex CALL_DUMMY_STACK_ADJUST
3093 Stack adjustment needed when performing an inferior function call.
3094
3095 Should be deprecated in favor of something like @code{STACK_ALIGN}.
3096
3097 @item CALL_DUMMY_STACK_ADJUST_P
3098 @findex CALL_DUMMY_STACK_ADJUST_P
3099 Predicate for use of @code{CALL_DUMMY_STACK_ADJUST}.
3100
3101 Should be deprecated in favor of something like @code{STACK_ALIGN}.
3102
3103 @item CANNOT_FETCH_REGISTER (@var{regno})
3104 @findex CANNOT_FETCH_REGISTER
3105 A C expression that should be nonzero if @var{regno} cannot be fetched
3106 from an inferior process. This is only relevant if
3107 @code{FETCH_INFERIOR_REGISTERS} is not defined.
3108
3109 @item CANNOT_STORE_REGISTER (@var{regno})
3110 @findex CANNOT_STORE_REGISTER
3111 A C expression that should be nonzero if @var{regno} should not be
3112 written to the target. This is often the case for program counters,
3113 status words, and other special registers. If this is not defined,
3114 @value{GDBN} will assume that all registers may be written.
3115
3116 @item DO_DEFERRED_STORES
3117 @itemx CLEAR_DEFERRED_STORES
3118 @findex CLEAR_DEFERRED_STORES
3119 @findex DO_DEFERRED_STORES
3120 Define this to execute any deferred stores of registers into the inferior,
3121 and to cancel any deferred stores.
3122
3123 Currently only implemented correctly for native Sparc configurations?
3124
3125 @item int CONVERT_REGISTER_P(@var{regnum})
3126 @findex CONVERT_REGISTER_P
3127 Return non-zero if register @var{regnum} can represent data values in a
3128 non-standard form.
3129 @xref{Target Architecture Definition, , Using Different Register and Memory Data Representations}.
3130
3131 @item DECR_PC_AFTER_BREAK
3132 @findex DECR_PC_AFTER_BREAK
3133 Define this to be the amount by which to decrement the PC after the
3134 program encounters a breakpoint. This is often the number of bytes in
3135 @code{BREAKPOINT}, though not always. For most targets this value will be 0.
3136
3137 @item DECR_PC_AFTER_HW_BREAK
3138 @findex DECR_PC_AFTER_HW_BREAK
3139 Similarly, for hardware breakpoints.
3140
3141 @item DISABLE_UNSETTABLE_BREAK (@var{addr})
3142 @findex DISABLE_UNSETTABLE_BREAK
3143 If defined, this should evaluate to 1 if @var{addr} is in a shared
3144 library in which breakpoints cannot be set and so should be disabled.
3145
3146 @item PRINT_FLOAT_INFO()
3147 @findex PRINT_FLOAT_INFO
3148 If defined, then the @samp{info float} command will print information about
3149 the processor's floating point unit.
3150
3151 @item print_registers_info (@var{gdbarch}, @var{frame}, @var{regnum}, @var{all})
3152 @findex print_registers_info
3153 If defined, pretty print the value of the register @var{regnum} for the
3154 specified @var{frame}. If the value of @var{regnum} is -1, pretty print
3155 either all registers (@var{all} is non zero) or a select subset of
3156 registers (@var{all} is zero).
3157
3158 The default method prints one register per line, and if @var{all} is
3159 zero omits floating-point registers.
3160
3161 @item PRINT_VECTOR_INFO()
3162 @findex PRINT_VECTOR_INFO
3163 If defined, then the @samp{info vector} command will call this function
3164 to print information about the processor's vector unit.
3165
3166 By default, the @samp{info vector} command will print all vector
3167 registers (the register's type having the vector attribute).
3168
3169 @item DWARF_REG_TO_REGNUM
3170 @findex DWARF_REG_TO_REGNUM
3171 Convert DWARF register number into @value{GDBN} regnum. If not defined,
3172 no conversion will be performed.
3173
3174 @item DWARF2_REG_TO_REGNUM
3175 @findex DWARF2_REG_TO_REGNUM
3176 Convert DWARF2 register number into @value{GDBN} regnum. If not
3177 defined, no conversion will be performed.
3178
3179 @item ECOFF_REG_TO_REGNUM
3180 @findex ECOFF_REG_TO_REGNUM
3181 Convert ECOFF register number into @value{GDBN} regnum. If not defined,
3182 no conversion will be performed.
3183
3184 @item END_OF_TEXT_DEFAULT
3185 @findex END_OF_TEXT_DEFAULT
3186 This is an expression that should designate the end of the text section.
3187 @c (? FIXME ?)
3188
3189 @item EXTRACT_RETURN_VALUE(@var{type}, @var{regbuf}, @var{valbuf})
3190 @findex EXTRACT_RETURN_VALUE
3191 Define this to extract a function's return value of type @var{type} from
3192 the raw register state @var{regbuf} and copy that, in virtual format,
3193 into @var{valbuf}.
3194
3195 @item EXTRACT_STRUCT_VALUE_ADDRESS(@var{regbuf})
3196 @findex EXTRACT_STRUCT_VALUE_ADDRESS
3197 When defined, extract from the array @var{regbuf} (containing the raw
3198 register state) the @code{CORE_ADDR} at which a function should return
3199 its structure value.
3200
3201 If not defined, @code{EXTRACT_RETURN_VALUE} is used.
3202
3203 @item EXTRACT_STRUCT_VALUE_ADDRESS_P()
3204 @findex EXTRACT_STRUCT_VALUE_ADDRESS_P
3205 Predicate for @code{EXTRACT_STRUCT_VALUE_ADDRESS}.
3206
3207 @item FP_REGNUM
3208 @findex FP_REGNUM
3209 If the virtual frame pointer is kept in a register, then define this
3210 macro to be the number (greater than or equal to zero) of that register.
3211
3212 This should only need to be defined if @code{TARGET_READ_FP} is not
3213 defined.
3214
3215 @item FRAMELESS_FUNCTION_INVOCATION(@var{fi})
3216 @findex FRAMELESS_FUNCTION_INVOCATION
3217 Define this to an expression that returns 1 if the function invocation
3218 represented by @var{fi} does not have a stack frame associated with it.
3219 Otherwise return 0.
3220
3221 @item frame_align (@var{address})
3222 @anchor{frame_align}
3223 @findex frame_align
3224 Define this to adjust @var{address} so that it meets the alignment
3225 requirements for the start of a new stack frame. A stack frame's
3226 alignment requirements are typically stronger than a target processors
3227 stack alignment requirements (@pxref{STACK_ALIGN}).
3228
3229 This function is used to ensure that, when creating a dummy frame, both
3230 the initial stack pointer and (if needed) the address of the return
3231 value are correctly aligned.
3232
3233 Unlike @code{STACK_ALIGN}, this function always adjusts the address in
3234 the direction of stack growth.
3235
3236 By default, no frame based stack alignment is performed.
3237
3238 @item FRAME_ARGS_ADDRESS_CORRECT
3239 @findex FRAME_ARGS_ADDRESS_CORRECT
3240 See @file{stack.c}.
3241
3242 @item FRAME_CHAIN(@var{frame})
3243 @findex FRAME_CHAIN
3244 Given @var{frame}, return a pointer to the calling frame.
3245
3246 @item FRAME_CHAIN_VALID(@var{chain}, @var{thisframe})
3247 @findex FRAME_CHAIN_VALID
3248 Define this to be an expression that returns zero if the given frame is an
3249 outermost frame, with no caller, and nonzero otherwise. Most normal
3250 situations can be handled without defining this macro, including @code{NULL}
3251 chain pointers, dummy frames, and frames whose PC values are inside the
3252 startup file (e.g.@: @file{crt0.o}), inside @code{main}, or inside
3253 @code{_start}.
3254
3255 @item DEPRECATED_FRAME_INIT_SAVED_REGS(@var{frame})
3256 @findex DEPRECATED_FRAME_INIT_SAVED_REGS
3257 See @file{frame.h}. Determines the address of all registers in the
3258 current stack frame storing each in @code{frame->saved_regs}. Space for
3259 @code{frame->saved_regs} shall be allocated by
3260 @code{DEPRECATED_FRAME_INIT_SAVED_REGS} using
3261 @code{frame_saved_regs_zalloc}.
3262
3263 @code{FRAME_FIND_SAVED_REGS} and @code{EXTRA_FRAME_INFO} are deprecated.
3264
3265 @item FRAME_NUM_ARGS (@var{fi})
3266 @findex FRAME_NUM_ARGS
3267 For the frame described by @var{fi} return the number of arguments that
3268 are being passed. If the number of arguments is not known, return
3269 @code{-1}.
3270
3271 @item DEPRECATED_FRAME_SAVED_PC(@var{frame})
3272 @findex DEPRECATED_FRAME_SAVED_PC
3273 @anchor{DEPRECATED_FRAME_SAVED_PC} Given @var{frame}, return the pc
3274 saved there. This is the return address.
3275
3276 This method is deprecated. @xref{unwind_pc}.
3277
3278 @item CORE_ADDR unwind_pc (struct frame_info *@var{this_frame})
3279 @findex unwind_pc
3280 @anchor{unwind_pc} Return the instruction address, in @var{this_frame}'s
3281 caller, at which execution will resume after @var{this_frame} returns.
3282 This is commonly refered to as the return address.
3283
3284 The implementation, which must be frame agnostic (work with any frame),
3285 is typically no more than:
3286
3287 @smallexample
3288 ULONGEST pc;
3289 frame_unwind_unsigned_register (this_frame, D10V_PC_REGNUM, &pc);
3290 return d10v_make_iaddr (pc);
3291 @end smallexample
3292
3293 @noindent
3294 @xref{DEPRECATED_FRAME_SAVED_PC}, which this method replaces.
3295
3296 @item FUNCTION_EPILOGUE_SIZE
3297 @findex FUNCTION_EPILOGUE_SIZE
3298 For some COFF targets, the @code{x_sym.x_misc.x_fsize} field of the
3299 function end symbol is 0. For such targets, you must define
3300 @code{FUNCTION_EPILOGUE_SIZE} to expand into the standard size of a
3301 function's epilogue.
3302
3303 @item FUNCTION_START_OFFSET
3304 @findex FUNCTION_START_OFFSET
3305 An integer, giving the offset in bytes from a function's address (as
3306 used in the values of symbols, function pointers, etc.), and the
3307 function's first genuine instruction.
3308
3309 This is zero on almost all machines: the function's address is usually
3310 the address of its first instruction. However, on the VAX, for example,
3311 each function starts with two bytes containing a bitmask indicating
3312 which registers to save upon entry to the function. The VAX @code{call}
3313 instructions check this value, and save the appropriate registers
3314 automatically. Thus, since the offset from the function's address to
3315 its first instruction is two bytes, @code{FUNCTION_START_OFFSET} would
3316 be 2 on the VAX.
3317
3318 @item GCC_COMPILED_FLAG_SYMBOL
3319 @itemx GCC2_COMPILED_FLAG_SYMBOL
3320 @findex GCC2_COMPILED_FLAG_SYMBOL
3321 @findex GCC_COMPILED_FLAG_SYMBOL
3322 If defined, these are the names of the symbols that @value{GDBN} will
3323 look for to detect that GCC compiled the file. The default symbols
3324 are @code{gcc_compiled.} and @code{gcc2_compiled.},
3325 respectively. (Currently only defined for the Delta 68.)
3326
3327 @item @value{GDBN}_MULTI_ARCH
3328 @findex @value{GDBN}_MULTI_ARCH
3329 If defined and non-zero, enables support for multiple architectures
3330 within @value{GDBN}.
3331
3332 This support can be enabled at two levels. At level one, only
3333 definitions for previously undefined macros are provided; at level two,
3334 a multi-arch definition of all architecture dependent macros will be
3335 defined.
3336
3337 @item @value{GDBN}_TARGET_IS_HPPA
3338 @findex @value{GDBN}_TARGET_IS_HPPA
3339 This determines whether horrible kludge code in @file{dbxread.c} and
3340 @file{partial-stab.h} is used to mangle multiple-symbol-table files from
3341 HPPA's. This should all be ripped out, and a scheme like @file{elfread.c}
3342 used instead.
3343
3344 @item GET_LONGJMP_TARGET
3345 @findex GET_LONGJMP_TARGET
3346 For most machines, this is a target-dependent parameter. On the
3347 DECstation and the Iris, this is a native-dependent parameter, since
3348 the header file @file{setjmp.h} is needed to define it.
3349
3350 This macro determines the target PC address that @code{longjmp} will jump to,
3351 assuming that we have just stopped at a @code{longjmp} breakpoint. It takes a
3352 @code{CORE_ADDR *} as argument, and stores the target PC value through this
3353 pointer. It examines the current state of the machine as needed.
3354
3355 @item DEPRECATED_GET_SAVED_REGISTER
3356 @findex DEPRECATED_GET_SAVED_REGISTER
3357 Define this if you need to supply your own definition for the function
3358 @code{DEPRECATED_GET_SAVED_REGISTER}.
3359
3360 @item IBM6000_TARGET
3361 @findex IBM6000_TARGET
3362 Shows that we are configured for an IBM RS/6000 target. This
3363 conditional should be eliminated (FIXME) and replaced by
3364 feature-specific macros. It was introduced in a haste and we are
3365 repenting at leisure.
3366
3367 @item I386_USE_GENERIC_WATCHPOINTS
3368 An x86-based target can define this to use the generic x86 watchpoint
3369 support; see @ref{Algorithms, I386_USE_GENERIC_WATCHPOINTS}.
3370
3371 @item SYMBOLS_CAN_START_WITH_DOLLAR
3372 @findex SYMBOLS_CAN_START_WITH_DOLLAR
3373 Some systems have routines whose names start with @samp{$}. Giving this
3374 macro a non-zero value tells @value{GDBN}'s expression parser to check for such
3375 routines when parsing tokens that begin with @samp{$}.
3376
3377 On HP-UX, certain system routines (millicode) have names beginning with
3378 @samp{$} or @samp{$$}. For example, @code{$$dyncall} is a millicode
3379 routine that handles inter-space procedure calls on PA-RISC.
3380
3381 @item DEPRECATED_INIT_EXTRA_FRAME_INFO (@var{fromleaf}, @var{frame})
3382 @findex DEPRECATED_INIT_EXTRA_FRAME_INFO
3383 If additional information about the frame is required this should be
3384 stored in @code{frame->extra_info}. Space for @code{frame->extra_info}
3385 is allocated using @code{frame_extra_info_zalloc}.
3386
3387 @item DEPRECATED_INIT_FRAME_PC (@var{fromleaf}, @var{prev})
3388 @findex DEPRECATED_INIT_FRAME_PC
3389 This is a C statement that sets the pc of the frame pointed to by
3390 @var{prev}. [By default...]
3391
3392 @item INNER_THAN (@var{lhs}, @var{rhs})
3393 @findex INNER_THAN
3394 Returns non-zero if stack address @var{lhs} is inner than (nearer to the
3395 stack top) stack address @var{rhs}. Define this as @code{lhs < rhs} if
3396 the target's stack grows downward in memory, or @code{lhs > rsh} if the
3397 stack grows upward.
3398
3399 @item gdbarch_in_function_epilogue_p (@var{gdbarch}, @var{pc})
3400 @findex gdbarch_in_function_epilogue_p
3401 Returns non-zero if the given @var{pc} is in the epilogue of a function.
3402 The epilogue of a function is defined as the part of a function where
3403 the stack frame of the function already has been destroyed up to the
3404 final `return from function call' instruction.
3405
3406 @item SIGTRAMP_START (@var{pc})
3407 @findex SIGTRAMP_START
3408 @itemx SIGTRAMP_END (@var{pc})
3409 @findex SIGTRAMP_END
3410 Define these to be the start and end address of the @code{sigtramp} for the
3411 given @var{pc}. On machines where the address is just a compile time
3412 constant, the macro expansion will typically just ignore the supplied
3413 @var{pc}.
3414
3415 @item IN_SOLIB_CALL_TRAMPOLINE (@var{pc}, @var{name})
3416 @findex IN_SOLIB_CALL_TRAMPOLINE
3417 Define this to evaluate to nonzero if the program is stopped in the
3418 trampoline that connects to a shared library.
3419
3420 @item IN_SOLIB_RETURN_TRAMPOLINE (@var{pc}, @var{name})
3421 @findex IN_SOLIB_RETURN_TRAMPOLINE
3422 Define this to evaluate to nonzero if the program is stopped in the
3423 trampoline that returns from a shared library.
3424
3425 @item IN_SOLIB_DYNSYM_RESOLVE_CODE (@var{pc})
3426 @findex IN_SOLIB_DYNSYM_RESOLVE_CODE
3427 Define this to evaluate to nonzero if the program is stopped in the
3428 dynamic linker.
3429
3430 @item SKIP_SOLIB_RESOLVER (@var{pc})
3431 @findex SKIP_SOLIB_RESOLVER
3432 Define this to evaluate to the (nonzero) address at which execution
3433 should continue to get past the dynamic linker's symbol resolution
3434 function. A zero value indicates that it is not important or necessary
3435 to set a breakpoint to get through the dynamic linker and that single
3436 stepping will suffice.
3437
3438 @item INTEGER_TO_ADDRESS (@var{type}, @var{buf})
3439 @findex INTEGER_TO_ADDRESS
3440 @cindex converting integers to addresses
3441 Define this when the architecture needs to handle non-pointer to address
3442 conversions specially. Converts that value to an address according to
3443 the current architectures conventions.
3444
3445 @emph{Pragmatics: When the user copies a well defined expression from
3446 their source code and passes it, as a parameter, to @value{GDBN}'s
3447 @code{print} command, they should get the same value as would have been
3448 computed by the target program. Any deviation from this rule can cause
3449 major confusion and annoyance, and needs to be justified carefully. In
3450 other words, @value{GDBN} doesn't really have the freedom to do these
3451 conversions in clever and useful ways. It has, however, been pointed
3452 out that users aren't complaining about how @value{GDBN} casts integers
3453 to pointers; they are complaining that they can't take an address from a
3454 disassembly listing and give it to @code{x/i}. Adding an architecture
3455 method like @code{INTEGER_TO_ADDRESS} certainly makes it possible for
3456 @value{GDBN} to ``get it right'' in all circumstances.}
3457
3458 @xref{Target Architecture Definition, , Pointers Are Not Always
3459 Addresses}.
3460
3461 @item NEED_TEXT_START_END
3462 @findex NEED_TEXT_START_END
3463 Define this if @value{GDBN} should determine the start and end addresses of the
3464 text section. (Seems dubious.)
3465
3466 @item NO_HIF_SUPPORT
3467 @findex NO_HIF_SUPPORT
3468 (Specific to the a29k.)
3469
3470 @item POINTER_TO_ADDRESS (@var{type}, @var{buf})
3471 @findex POINTER_TO_ADDRESS
3472 Assume that @var{buf} holds a pointer of type @var{type}, in the
3473 appropriate format for the current architecture. Return the byte
3474 address the pointer refers to.
3475 @xref{Target Architecture Definition, , Pointers Are Not Always Addresses}.
3476
3477 @item REGISTER_CONVERTIBLE (@var{reg})
3478 @findex REGISTER_CONVERTIBLE
3479 Return non-zero if @var{reg} uses different raw and virtual formats.
3480 @xref{Target Architecture Definition, , Raw and Virtual Register Representations}.
3481
3482 @item REGISTER_TO_VALUE(@var{regnum}, @var{type}, @var{from}, @var{to})
3483 @findex REGISTER_TO_VALUE
3484 Convert the raw contents of register @var{regnum} into a value of type
3485 @var{type}.
3486 @xref{Target Architecture Definition, , Using Different Register and Memory Data Representations}.
3487
3488 @item REGISTER_RAW_SIZE (@var{reg})
3489 @findex REGISTER_RAW_SIZE
3490 Return the raw size of @var{reg}; defaults to the size of the register's
3491 virtual type.
3492 @xref{Target Architecture Definition, , Raw and Virtual Register Representations}.
3493
3494 @item register_reggroup_p (@var{gdbarch}, @var{regnum}, @var{reggroup})
3495 @findex register_reggroup_p
3496 @cindex register groups
3497 Return non-zero if register @var{regnum} is a member of the register
3498 group @var{reggroup}.
3499
3500 By default, registers are grouped as follows:
3501
3502 @table @code
3503 @item float_reggroup
3504 Any register with a valid name and a floating-point type.
3505 @item vector_reggroup
3506 Any register with a valid name and a vector type.
3507 @item general_reggroup
3508 Any register with a valid name and a type other than vector or
3509 floating-point. @samp{float_reggroup}.
3510 @item save_reggroup
3511 @itemx restore_reggroup
3512 @itemx all_reggroup
3513 Any register with a valid name.
3514 @end table
3515
3516 @item REGISTER_VIRTUAL_SIZE (@var{reg})
3517 @findex REGISTER_VIRTUAL_SIZE
3518 Return the virtual size of @var{reg}; defaults to the size of the
3519 register's virtual type.
3520 Return the virtual size of @var{reg}.
3521 @xref{Target Architecture Definition, , Raw and Virtual Register Representations}.
3522
3523 @item REGISTER_VIRTUAL_TYPE (@var{reg})
3524 @findex REGISTER_VIRTUAL_TYPE
3525 Return the virtual type of @var{reg}.
3526 @xref{Target Architecture Definition, , Raw and Virtual Register Representations}.
3527
3528 @item struct type *register_type (@var{gdbarch}, @var{reg})
3529 @findex register_type
3530 If defined, return the type of register @var{reg}. This function
3531 superseeds @code{REGISTER_VIRTUAL_TYPE}. @xref{Target Architecture
3532 Definition, , Raw and Virtual Register Representations}.
3533
3534 @item REGISTER_CONVERT_TO_VIRTUAL(@var{reg}, @var{type}, @var{from}, @var{to})
3535 @findex REGISTER_CONVERT_TO_VIRTUAL
3536 Convert the value of register @var{reg} from its raw form to its virtual
3537 form.
3538 @xref{Target Architecture Definition, , Raw and Virtual Register Representations}.
3539
3540 @item REGISTER_CONVERT_TO_RAW(@var{type}, @var{reg}, @var{from}, @var{to})
3541 @findex REGISTER_CONVERT_TO_RAW
3542 Convert the value of register @var{reg} from its virtual form to its raw
3543 form.
3544 @xref{Target Architecture Definition, , Raw and Virtual Register Representations}.
3545
3546 @item RETURN_VALUE_ON_STACK(@var{type})
3547 @findex RETURN_VALUE_ON_STACK
3548 @cindex returning structures by value
3549 @cindex structures, returning by value
3550
3551 Return non-zero if values of type TYPE are returned on the stack, using
3552 the ``struct convention'' (i.e., the caller provides a pointer to a
3553 buffer in which the callee should store the return value). This
3554 controls how the @samp{finish} command finds a function's return value,
3555 and whether an inferior function call reserves space on the stack for
3556 the return value.
3557
3558 The full logic @value{GDBN} uses here is kind of odd.
3559
3560 @itemize @bullet
3561 @item
3562 If the type being returned by value is not a structure, union, or array,
3563 and @code{RETURN_VALUE_ON_STACK} returns zero, then @value{GDBN}
3564 concludes the value is not returned using the struct convention.
3565
3566 @item
3567 Otherwise, @value{GDBN} calls @code{USE_STRUCT_CONVENTION} (see below).
3568 If that returns non-zero, @value{GDBN} assumes the struct convention is
3569 in use.
3570 @end itemize
3571
3572 In other words, to indicate that a given type is returned by value using
3573 the struct convention, that type must be either a struct, union, array,
3574 or something @code{RETURN_VALUE_ON_STACK} likes, @emph{and} something
3575 that @code{USE_STRUCT_CONVENTION} likes.
3576
3577 Note that, in C and C@t{++}, arrays are never returned by value. In those
3578 languages, these predicates will always see a pointer type, never an
3579 array type. All the references above to arrays being returned by value
3580 apply only to other languages.
3581
3582 @item SOFTWARE_SINGLE_STEP_P()
3583 @findex SOFTWARE_SINGLE_STEP_P
3584 Define this as 1 if the target does not have a hardware single-step
3585 mechanism. The macro @code{SOFTWARE_SINGLE_STEP} must also be defined.
3586
3587 @item SOFTWARE_SINGLE_STEP(@var{signal}, @var{insert_breapoints_p})
3588 @findex SOFTWARE_SINGLE_STEP
3589 A function that inserts or removes (depending on
3590 @var{insert_breapoints_p}) breakpoints at each possible destinations of
3591 the next instruction. See @file{sparc-tdep.c} and @file{rs6000-tdep.c}
3592 for examples.
3593
3594 @item SOFUN_ADDRESS_MAYBE_MISSING
3595 @findex SOFUN_ADDRESS_MAYBE_MISSING
3596 Somebody clever observed that, the more actual addresses you have in the
3597 debug information, the more time the linker has to spend relocating
3598 them. So whenever there's some other way the debugger could find the
3599 address it needs, you should omit it from the debug info, to make
3600 linking faster.
3601
3602 @code{SOFUN_ADDRESS_MAYBE_MISSING} indicates that a particular set of
3603 hacks of this sort are in use, affecting @code{N_SO} and @code{N_FUN}
3604 entries in stabs-format debugging information. @code{N_SO} stabs mark
3605 the beginning and ending addresses of compilation units in the text
3606 segment. @code{N_FUN} stabs mark the starts and ends of functions.
3607
3608 @code{SOFUN_ADDRESS_MAYBE_MISSING} means two things:
3609
3610 @itemize @bullet
3611 @item
3612 @code{N_FUN} stabs have an address of zero. Instead, you should find the
3613 addresses where the function starts by taking the function name from
3614 the stab, and then looking that up in the minsyms (the
3615 linker/assembler symbol table). In other words, the stab has the
3616 name, and the linker/assembler symbol table is the only place that carries
3617 the address.
3618
3619 @item
3620 @code{N_SO} stabs have an address of zero, too. You just look at the
3621 @code{N_FUN} stabs that appear before and after the @code{N_SO} stab,
3622 and guess the starting and ending addresses of the compilation unit from
3623 them.
3624 @end itemize
3625
3626 @item PCC_SOL_BROKEN
3627 @findex PCC_SOL_BROKEN
3628 (Used only in the Convex target.)
3629
3630 @item PC_IN_SIGTRAMP (@var{pc}, @var{name})
3631 @findex PC_IN_SIGTRAMP
3632 @cindex sigtramp
3633 The @dfn{sigtramp} is a routine that the kernel calls (which then calls
3634 the signal handler). On most machines it is a library routine that is
3635 linked into the executable.
3636
3637 This function, given a program counter value in @var{pc} and the
3638 (possibly NULL) name of the function in which that @var{pc} resides,
3639 returns nonzero if the @var{pc} and/or @var{name} show that we are in
3640 sigtramp.
3641
3642 @item PC_LOAD_SEGMENT
3643 @findex PC_LOAD_SEGMENT
3644 If defined, print information about the load segment for the program
3645 counter. (Defined only for the RS/6000.)
3646
3647 @item PC_REGNUM
3648 @findex PC_REGNUM
3649 If the program counter is kept in a register, then define this macro to
3650 be the number (greater than or equal to zero) of that register.
3651
3652 This should only need to be defined if @code{TARGET_READ_PC} and
3653 @code{TARGET_WRITE_PC} are not defined.
3654
3655 @item NPC_REGNUM
3656 @findex NPC_REGNUM
3657 The number of the ``next program counter'' register, if defined.
3658
3659 @item PARM_BOUNDARY
3660 @findex PARM_BOUNDARY
3661 If non-zero, round arguments to a boundary of this many bits before
3662 pushing them on the stack.
3663
3664 @item PRINT_TYPELESS_INTEGER
3665 @findex PRINT_TYPELESS_INTEGER
3666 This is an obscure substitute for @code{print_longest} that seems to
3667 have been defined for the Convex target.
3668
3669 @item PROCESS_LINENUMBER_HOOK
3670 @findex PROCESS_LINENUMBER_HOOK
3671 A hook defined for XCOFF reading.
3672
3673 @item PROLOGUE_FIRSTLINE_OVERLAP
3674 @findex PROLOGUE_FIRSTLINE_OVERLAP
3675 (Only used in unsupported Convex configuration.)
3676
3677 @item PS_REGNUM
3678 @findex PS_REGNUM
3679 If defined, this is the number of the processor status register. (This
3680 definition is only used in generic code when parsing "$ps".)
3681
3682 @item DEPRECATED_POP_FRAME
3683 @findex DEPRECATED_POP_FRAME
3684 @findex frame_pop
3685 If defined, used by @code{frame_pop} to remove a stack frame. This
3686 method has been superseeded by generic code.
3687
3688 @item PUSH_ARGUMENTS (@var{nargs}, @var{args}, @var{sp}, @var{struct_return}, @var{struct_addr})
3689 @findex PUSH_ARGUMENTS
3690 Define this to push arguments onto the stack for inferior function
3691 call. Returns the updated stack pointer value.
3692
3693 @item PUSH_DUMMY_FRAME
3694 @findex PUSH_DUMMY_FRAME
3695 Used in @samp{call_function_by_hand} to create an artificial stack frame.
3696
3697 @item REGISTER_BYTES
3698 @findex REGISTER_BYTES
3699 The total amount of space needed to store @value{GDBN}'s copy of the machine's
3700 register state.
3701
3702 @item REGISTER_NAME(@var{i})
3703 @findex REGISTER_NAME
3704 Return the name of register @var{i} as a string. May return @code{NULL}
3705 or @code{NUL} to indicate that register @var{i} is not valid.
3706
3707 @item REGISTER_NAMES
3708 @findex REGISTER_NAMES
3709 Deprecated in favor of @code{REGISTER_NAME}.
3710
3711 @item REG_STRUCT_HAS_ADDR (@var{gcc_p}, @var{type})
3712 @findex REG_STRUCT_HAS_ADDR
3713 Define this to return 1 if the given type will be passed by pointer
3714 rather than directly.
3715
3716 @item SAVE_DUMMY_FRAME_TOS (@var{sp})
3717 @findex SAVE_DUMMY_FRAME_TOS
3718 @anchor{SAVE_DUMMY_FRAME_TOS} Used in @samp{call_function_by_hand} to
3719 notify the target dependent code of the top-of-stack value that will be
3720 passed to the the inferior code. This is the value of the @code{SP}
3721 after both the dummy frame and space for parameters/results have been
3722 allocated on the stack. @xref{unwind_dummy_id}.
3723
3724 @item SDB_REG_TO_REGNUM
3725 @findex SDB_REG_TO_REGNUM
3726 Define this to convert sdb register numbers into @value{GDBN} regnums. If not
3727 defined, no conversion will be done.
3728
3729 @item SKIP_PERMANENT_BREAKPOINT
3730 @findex SKIP_PERMANENT_BREAKPOINT
3731 Advance the inferior's PC past a permanent breakpoint. @value{GDBN} normally
3732 steps over a breakpoint by removing it, stepping one instruction, and
3733 re-inserting the breakpoint. However, permanent breakpoints are
3734 hardwired into the inferior, and can't be removed, so this strategy
3735 doesn't work. Calling @code{SKIP_PERMANENT_BREAKPOINT} adjusts the processor's
3736 state so that execution will resume just after the breakpoint. This
3737 macro does the right thing even when the breakpoint is in the delay slot
3738 of a branch or jump.
3739
3740 @item SKIP_PROLOGUE (@var{pc})
3741 @findex SKIP_PROLOGUE
3742 A C expression that returns the address of the ``real'' code beyond the
3743 function entry prologue found at @var{pc}.
3744
3745 @item SKIP_TRAMPOLINE_CODE (@var{pc})
3746 @findex SKIP_TRAMPOLINE_CODE
3747 If the target machine has trampoline code that sits between callers and
3748 the functions being called, then define this macro to return a new PC
3749 that is at the start of the real function.
3750
3751 @item SP_REGNUM
3752 @findex SP_REGNUM
3753 If the stack-pointer is kept in a register, then define this macro to be
3754 the number (greater than or equal to zero) of that register.
3755
3756 This should only need to be defined if @code{TARGET_WRITE_SP} and
3757 @code{TARGET_WRITE_SP} are not defined.
3758
3759 @item STAB_REG_TO_REGNUM
3760 @findex STAB_REG_TO_REGNUM
3761 Define this to convert stab register numbers (as gotten from `r'
3762 declarations) into @value{GDBN} regnums. If not defined, no conversion will be
3763 done.
3764
3765 @item STACK_ALIGN (@var{addr})
3766 @anchor{STACK_ALIGN}
3767 @findex STACK_ALIGN
3768 Define this to increase @var{addr} so that it meets the alignment
3769 requirements for the processor's stack.
3770
3771 Unlike @ref{frame_align}, this function always adjusts @var{addr}
3772 upwards.
3773
3774 By default, no stack alignment is performed.
3775
3776 @item STEP_SKIPS_DELAY (@var{addr})
3777 @findex STEP_SKIPS_DELAY
3778 Define this to return true if the address is of an instruction with a
3779 delay slot. If a breakpoint has been placed in the instruction's delay
3780 slot, @value{GDBN} will single-step over that instruction before resuming
3781 normally. Currently only defined for the Mips.
3782
3783 @item STORE_RETURN_VALUE (@var{type}, @var{regcache}, @var{valbuf})
3784 @findex STORE_RETURN_VALUE
3785 A C expression that writes the function return value, found in
3786 @var{valbuf}, into the @var{regcache}. @var{type} is the type of the
3787 value that is to be returned.
3788
3789 @item SUN_FIXED_LBRAC_BUG
3790 @findex SUN_FIXED_LBRAC_BUG
3791 (Used only for Sun-3 and Sun-4 targets.)
3792
3793 @item SYMBOL_RELOADING_DEFAULT
3794 @findex SYMBOL_RELOADING_DEFAULT
3795 The default value of the ``symbol-reloading'' variable. (Never defined in
3796 current sources.)
3797
3798 @item TARGET_CHAR_BIT
3799 @findex TARGET_CHAR_BIT
3800 Number of bits in a char; defaults to 8.
3801
3802 @item TARGET_CHAR_SIGNED
3803 @findex TARGET_CHAR_SIGNED
3804 Non-zero if @code{char} is normally signed on this architecture; zero if
3805 it should be unsigned.
3806
3807 The ISO C standard requires the compiler to treat @code{char} as
3808 equivalent to either @code{signed char} or @code{unsigned char}; any
3809 character in the standard execution set is supposed to be positive.
3810 Most compilers treat @code{char} as signed, but @code{char} is unsigned
3811 on the IBM S/390, RS6000, and PowerPC targets.
3812
3813 @item TARGET_COMPLEX_BIT
3814 @findex TARGET_COMPLEX_BIT
3815 Number of bits in a complex number; defaults to @code{2 * TARGET_FLOAT_BIT}.
3816
3817 At present this macro is not used.
3818
3819 @item TARGET_DOUBLE_BIT
3820 @findex TARGET_DOUBLE_BIT
3821 Number of bits in a double float; defaults to @code{8 * TARGET_CHAR_BIT}.
3822
3823 @item TARGET_DOUBLE_COMPLEX_BIT
3824 @findex TARGET_DOUBLE_COMPLEX_BIT
3825 Number of bits in a double complex; defaults to @code{2 * TARGET_DOUBLE_BIT}.
3826
3827 At present this macro is not used.
3828
3829 @item TARGET_FLOAT_BIT
3830 @findex TARGET_FLOAT_BIT
3831 Number of bits in a float; defaults to @code{4 * TARGET_CHAR_BIT}.
3832
3833 @item TARGET_INT_BIT
3834 @findex TARGET_INT_BIT
3835 Number of bits in an integer; defaults to @code{4 * TARGET_CHAR_BIT}.
3836
3837 @item TARGET_LONG_BIT
3838 @findex TARGET_LONG_BIT
3839 Number of bits in a long integer; defaults to @code{4 * TARGET_CHAR_BIT}.
3840
3841 @item TARGET_LONG_DOUBLE_BIT
3842 @findex TARGET_LONG_DOUBLE_BIT
3843 Number of bits in a long double float;
3844 defaults to @code{2 * TARGET_DOUBLE_BIT}.
3845
3846 @item TARGET_LONG_LONG_BIT
3847 @findex TARGET_LONG_LONG_BIT
3848 Number of bits in a long long integer; defaults to @code{2 * TARGET_LONG_BIT}.
3849
3850 @item TARGET_PTR_BIT
3851 @findex TARGET_PTR_BIT
3852 Number of bits in a pointer; defaults to @code{TARGET_INT_BIT}.
3853
3854 @item TARGET_SHORT_BIT
3855 @findex TARGET_SHORT_BIT
3856 Number of bits in a short integer; defaults to @code{2 * TARGET_CHAR_BIT}.
3857
3858 @item TARGET_READ_PC
3859 @findex TARGET_READ_PC
3860 @itemx TARGET_WRITE_PC (@var{val}, @var{pid})
3861 @findex TARGET_WRITE_PC
3862 @itemx TARGET_READ_SP
3863 @findex TARGET_READ_SP
3864 @itemx TARGET_WRITE_SP
3865 @findex TARGET_WRITE_SP
3866 @itemx TARGET_READ_FP
3867 @findex TARGET_READ_FP
3868 @findex read_pc
3869 @findex write_pc
3870 @findex read_sp
3871 @findex write_sp
3872 @findex read_fp
3873 These change the behavior of @code{read_pc}, @code{write_pc},
3874 @code{read_sp}, @code{write_sp} and @code{read_fp}. For most targets,
3875 these may be left undefined. @value{GDBN} will call the read and write
3876 register functions with the relevant @code{_REGNUM} argument.
3877
3878 These macros are useful when a target keeps one of these registers in a
3879 hard to get at place; for example, part in a segment register and part
3880 in an ordinary register.
3881
3882 @item TARGET_VIRTUAL_FRAME_POINTER(@var{pc}, @var{regp}, @var{offsetp})
3883 @findex TARGET_VIRTUAL_FRAME_POINTER
3884 Returns a @code{(register, offset)} pair representing the virtual
3885 frame pointer in use at the code address @var{pc}. If virtual
3886 frame pointers are not used, a default definition simply returns
3887 @code{FP_REGNUM}, with an offset of zero.
3888
3889 @item TARGET_HAS_HARDWARE_WATCHPOINTS
3890 If non-zero, the target has support for hardware-assisted
3891 watchpoints. @xref{Algorithms, watchpoints}, for more details and
3892 other related macros.
3893
3894 @item TARGET_PRINT_INSN (@var{addr}, @var{info})
3895 @findex TARGET_PRINT_INSN
3896 This is the function used by @value{GDBN} to print an assembly
3897 instruction. It prints the instruction at address @var{addr} in
3898 debugged memory and returns the length of the instruction, in bytes. If
3899 a target doesn't define its own printing routine, it defaults to an
3900 accessor function for the global pointer @code{tm_print_insn}. This
3901 usually points to a function in the @code{opcodes} library (@pxref{Support
3902 Libraries, ,Opcodes}). @var{info} is a structure (of type
3903 @code{disassemble_info}) defined in @file{include/dis-asm.h} used to
3904 pass information to the instruction decoding routine.
3905
3906 @item struct frame_id unwind_dummy_id (struct frame_info *@var{frame})
3907 @findex unwind_dummy_id
3908 @anchor{unwind_dummy_id} Given @var{frame} return a @code{struct
3909 frame_id} that uniquely identifies an inferior function call's dummy
3910 frame. The value returned must match the dummy frame stack value
3911 previously saved using @code{SAVE_DUMMY_FRAME_TOS}.
3912 @xref{SAVE_DUMMY_FRAME_TOS}.
3913
3914 @item USE_STRUCT_CONVENTION (@var{gcc_p}, @var{type})
3915 @findex USE_STRUCT_CONVENTION
3916 If defined, this must be an expression that is nonzero if a value of the
3917 given @var{type} being returned from a function must have space
3918 allocated for it on the stack. @var{gcc_p} is true if the function
3919 being considered is known to have been compiled by GCC; this is helpful
3920 for systems where GCC is known to use different calling convention than
3921 other compilers.
3922
3923 @item VALUE_TO_REGISTER(@var{type}, @var{regnum}, @var{from}, @var{to})
3924 @findex VALUE_TO_REGISTER
3925 Convert a value of type @var{type} into the raw contents of register
3926 @var{regnum}'s.
3927 @xref{Target Architecture Definition, , Using Different Register and Memory Data Representations}.
3928
3929 @item VARIABLES_INSIDE_BLOCK (@var{desc}, @var{gcc_p})
3930 @findex VARIABLES_INSIDE_BLOCK
3931 For dbx-style debugging information, if the compiler puts variable
3932 declarations inside LBRAC/RBRAC blocks, this should be defined to be
3933 nonzero. @var{desc} is the value of @code{n_desc} from the
3934 @code{N_RBRAC} symbol, and @var{gcc_p} is true if @value{GDBN} has noticed the
3935 presence of either the @code{GCC_COMPILED_SYMBOL} or the
3936 @code{GCC2_COMPILED_SYMBOL}. By default, this is 0.
3937
3938 @item OS9K_VARIABLES_INSIDE_BLOCK (@var{desc}, @var{gcc_p})
3939 @findex OS9K_VARIABLES_INSIDE_BLOCK
3940 Similarly, for OS/9000. Defaults to 1.
3941 @end table
3942
3943 Motorola M68K target conditionals.
3944
3945 @ftable @code
3946 @item BPT_VECTOR
3947 Define this to be the 4-bit location of the breakpoint trap vector. If
3948 not defined, it will default to @code{0xf}.
3949
3950 @item REMOTE_BPT_VECTOR
3951 Defaults to @code{1}.
3952
3953 @item NAME_OF_MALLOC
3954 @findex NAME_OF_MALLOC
3955 A string containing the name of the function to call in order to
3956 allocate some memory in the inferior. The default value is "malloc".
3957
3958 @end ftable
3959
3960 @section Adding a New Target
3961
3962 @cindex adding a target
3963 The following files add a target to @value{GDBN}:
3964
3965 @table @file
3966 @vindex TDEPFILES
3967 @item gdb/config/@var{arch}/@var{ttt}.mt
3968 Contains a Makefile fragment specific to this target. Specifies what
3969 object files are needed for target @var{ttt}, by defining
3970 @samp{TDEPFILES=@dots{}} and @samp{TDEPLIBS=@dots{}}. Also specifies
3971 the header file which describes @var{ttt}, by defining @samp{TM_FILE=
3972 tm-@var{ttt}.h}.
3973
3974 You can also define @samp{TM_CFLAGS}, @samp{TM_CLIBS}, @samp{TM_CDEPS},
3975 but these are now deprecated, replaced by autoconf, and may go away in
3976 future versions of @value{GDBN}.
3977
3978 @item gdb/@var{ttt}-tdep.c
3979 Contains any miscellaneous code required for this target machine. On
3980 some machines it doesn't exist at all. Sometimes the macros in
3981 @file{tm-@var{ttt}.h} become very complicated, so they are implemented
3982 as functions here instead, and the macro is simply defined to call the
3983 function. This is vastly preferable, since it is easier to understand
3984 and debug.
3985
3986 @item gdb/@var{arch}-tdep.c
3987 @itemx gdb/@var{arch}-tdep.h
3988 This often exists to describe the basic layout of the target machine's
3989 processor chip (registers, stack, etc.). If used, it is included by
3990 @file{@var{ttt}-tdep.h}. It can be shared among many targets that use
3991 the same processor.
3992
3993 @item gdb/config/@var{arch}/tm-@var{ttt}.h
3994 (@file{tm.h} is a link to this file, created by @code{configure}). Contains
3995 macro definitions about the target machine's registers, stack frame
3996 format and instructions.
3997
3998 New targets do not need this file and should not create it.
3999
4000 @item gdb/config/@var{arch}/tm-@var{arch}.h
4001 This often exists to describe the basic layout of the target machine's
4002 processor chip (registers, stack, etc.). If used, it is included by
4003 @file{tm-@var{ttt}.h}. It can be shared among many targets that use the
4004 same processor.
4005
4006 New targets do not need this file and should not create it.
4007
4008 @end table
4009
4010 If you are adding a new operating system for an existing CPU chip, add a
4011 @file{config/tm-@var{os}.h} file that describes the operating system
4012 facilities that are unusual (extra symbol table info; the breakpoint
4013 instruction needed; etc.). Then write a @file{@var{arch}/tm-@var{os}.h}
4014 that just @code{#include}s @file{tm-@var{arch}.h} and
4015 @file{config/tm-@var{os}.h}.
4016
4017
4018 @section Converting an existing Target Architecture to Multi-arch
4019 @cindex converting targets to multi-arch
4020
4021 This section describes the current accepted best practice for converting
4022 an existing target architecture to the multi-arch framework.
4023
4024 The process consists of generating, testing, posting and committing a
4025 sequence of patches. Each patch must contain a single change, for
4026 instance:
4027
4028 @itemize @bullet
4029
4030 @item
4031 Directly convert a group of functions into macros (the conversion does
4032 not change the behavior of any of the functions).
4033
4034 @item
4035 Replace a non-multi-arch with a multi-arch mechanism (e.g.,
4036 @code{FRAME_INFO}).
4037
4038 @item
4039 Enable multi-arch level one.
4040
4041 @item
4042 Delete one or more files.
4043
4044 @end itemize
4045
4046 @noindent
4047 There isn't a size limit on a patch, however, a developer is strongly
4048 encouraged to keep the patch size down.
4049
4050 Since each patch is well defined, and since each change has been tested
4051 and shows no regressions, the patches are considered @emph{fairly}
4052 obvious. Such patches, when submitted by developers listed in the
4053 @file{MAINTAINERS} file, do not need approval. Occasional steps in the
4054 process may be more complicated and less clear. The developer is
4055 expected to use their judgment and is encouraged to seek advice as
4056 needed.
4057
4058 @subsection Preparation
4059
4060 The first step is to establish control. Build (with @option{-Werror}
4061 enabled) and test the target so that there is a baseline against which
4062 the debugger can be compared.
4063
4064 At no stage can the test results regress or @value{GDBN} stop compiling
4065 with @option{-Werror}.
4066
4067 @subsection Add the multi-arch initialization code
4068
4069 The objective of this step is to establish the basic multi-arch
4070 framework. It involves
4071
4072 @itemize @bullet
4073
4074 @item
4075 The addition of a @code{@var{arch}_gdbarch_init} function@footnote{The
4076 above is from the original example and uses K&R C. @value{GDBN}
4077 has since converted to ISO C but lets ignore that.} that creates
4078 the architecture:
4079 @smallexample
4080 static struct gdbarch *
4081 d10v_gdbarch_init (info, arches)
4082 struct gdbarch_info info;
4083 struct gdbarch_list *arches;
4084 @{
4085 struct gdbarch *gdbarch;
4086 /* there is only one d10v architecture */
4087 if (arches != NULL)
4088 return arches->gdbarch;
4089 gdbarch = gdbarch_alloc (&info, NULL);
4090 return gdbarch;
4091 @}
4092 @end smallexample
4093 @noindent
4094 @emph{}
4095
4096 @item
4097 A per-architecture dump function to print any architecture specific
4098 information:
4099 @smallexample
4100 static void
4101 mips_dump_tdep (struct gdbarch *current_gdbarch,
4102 struct ui_file *file)
4103 @{
4104 @dots{} code to print architecture specific info @dots{}
4105 @}
4106 @end smallexample
4107
4108 @item
4109 A change to @code{_initialize_@var{arch}_tdep} to register this new
4110 architecture:
4111 @smallexample
4112 void
4113 _initialize_mips_tdep (void)
4114 @{
4115 gdbarch_register (bfd_arch_mips, mips_gdbarch_init,
4116 mips_dump_tdep);
4117 @end smallexample
4118
4119 @item
4120 Add the macro @code{GDB_MULTI_ARCH}, defined as 0 (zero), to the file@*
4121 @file{config/@var{arch}/tm-@var{arch}.h}.
4122
4123 @end itemize
4124
4125 @subsection Update multi-arch incompatible mechanisms
4126
4127 Some mechanisms do not work with multi-arch. They include:
4128
4129 @table @code
4130 @item EXTRA_FRAME_INFO
4131 Delete.
4132 @item FRAME_FIND_SAVED_REGS
4133 Replaced with @code{DEPRECATED_FRAME_INIT_SAVED_REGS}
4134 @end table
4135
4136 @noindent
4137 At this stage you could also consider converting the macros into
4138 functions.
4139
4140 @subsection Prepare for multi-arch level to one
4141
4142 Temporally set @code{GDB_MULTI_ARCH} to @code{GDB_MULTI_ARCH_PARTIAL}
4143 and then build and start @value{GDBN} (the change should not be
4144 committed). @value{GDBN} may not build, and once built, it may die with
4145 an internal error listing the architecture methods that must be
4146 provided.
4147
4148 Fix any build problems (patch(es)).
4149
4150 Convert all the architecture methods listed, which are only macros, into
4151 functions (patch(es)).
4152
4153 Update @code{@var{arch}_gdbarch_init} to set all the missing
4154 architecture methods and wrap the corresponding macros in @code{#if
4155 !GDB_MULTI_ARCH} (patch(es)).
4156
4157 @subsection Set multi-arch level one
4158
4159 Change the value of @code{GDB_MULTI_ARCH} to GDB_MULTI_ARCH_PARTIAL (a
4160 single patch).
4161
4162 Any problems with throwing ``the switch'' should have been fixed
4163 already.
4164
4165 @subsection Convert remaining macros
4166
4167 Suggest converting macros into functions (and setting the corresponding
4168 architecture method) in small batches.
4169
4170 @subsection Set multi-arch level to two
4171
4172 This should go smoothly.
4173
4174 @subsection Delete the TM file
4175
4176 The @file{tm-@var{arch}.h} can be deleted. @file{@var{arch}.mt} and
4177 @file{configure.in} updated.
4178
4179
4180 @node Target Vector Definition
4181
4182 @chapter Target Vector Definition
4183 @cindex target vector
4184
4185 The target vector defines the interface between @value{GDBN}'s
4186 abstract handling of target systems, and the nitty-gritty code that
4187 actually exercises control over a process or a serial port.
4188 @value{GDBN} includes some 30-40 different target vectors; however,
4189 each configuration of @value{GDBN} includes only a few of them.
4190
4191 @section File Targets
4192
4193 Both executables and core files have target vectors.
4194
4195 @section Standard Protocol and Remote Stubs
4196
4197 @value{GDBN}'s file @file{remote.c} talks a serial protocol to code
4198 that runs in the target system. @value{GDBN} provides several sample
4199 @dfn{stubs} that can be integrated into target programs or operating
4200 systems for this purpose; they are named @file{*-stub.c}.
4201
4202 The @value{GDBN} user's manual describes how to put such a stub into
4203 your target code. What follows is a discussion of integrating the
4204 SPARC stub into a complicated operating system (rather than a simple
4205 program), by Stu Grossman, the author of this stub.
4206
4207 The trap handling code in the stub assumes the following upon entry to
4208 @code{trap_low}:
4209
4210 @enumerate
4211 @item
4212 %l1 and %l2 contain pc and npc respectively at the time of the trap;
4213
4214 @item
4215 traps are disabled;
4216
4217 @item
4218 you are in the correct trap window.
4219 @end enumerate
4220
4221 As long as your trap handler can guarantee those conditions, then there
4222 is no reason why you shouldn't be able to ``share'' traps with the stub.
4223 The stub has no requirement that it be jumped to directly from the
4224 hardware trap vector. That is why it calls @code{exceptionHandler()},
4225 which is provided by the external environment. For instance, this could
4226 set up the hardware traps to actually execute code which calls the stub
4227 first, and then transfers to its own trap handler.
4228
4229 For the most point, there probably won't be much of an issue with
4230 ``sharing'' traps, as the traps we use are usually not used by the kernel,
4231 and often indicate unrecoverable error conditions. Anyway, this is all
4232 controlled by a table, and is trivial to modify. The most important
4233 trap for us is for @code{ta 1}. Without that, we can't single step or
4234 do breakpoints. Everything else is unnecessary for the proper operation
4235 of the debugger/stub.
4236
4237 From reading the stub, it's probably not obvious how breakpoints work.
4238 They are simply done by deposit/examine operations from @value{GDBN}.
4239
4240 @section ROM Monitor Interface
4241
4242 @section Custom Protocols
4243
4244 @section Transport Layer
4245
4246 @section Builtin Simulator
4247
4248
4249 @node Native Debugging
4250
4251 @chapter Native Debugging
4252 @cindex native debugging
4253
4254 Several files control @value{GDBN}'s configuration for native support:
4255
4256 @table @file
4257 @vindex NATDEPFILES
4258 @item gdb/config/@var{arch}/@var{xyz}.mh
4259 Specifies Makefile fragments needed by a @emph{native} configuration on
4260 machine @var{xyz}. In particular, this lists the required
4261 native-dependent object files, by defining @samp{NATDEPFILES=@dots{}}.
4262 Also specifies the header file which describes native support on
4263 @var{xyz}, by defining @samp{NAT_FILE= nm-@var{xyz}.h}. You can also
4264 define @samp{NAT_CFLAGS}, @samp{NAT_ADD_FILES}, @samp{NAT_CLIBS},
4265 @samp{NAT_CDEPS}, etc.; see @file{Makefile.in}.
4266
4267 @emph{Maintainer's note: The @file{.mh} suffix is because this file
4268 originally contained @file{Makefile} fragments for hosting @value{GDBN}
4269 on machine @var{xyz}. While the file is no longer used for this
4270 purpose, the @file{.mh} suffix remains. Perhaps someone will
4271 eventually rename these fragments so that they have a @file{.mn}
4272 suffix.}
4273
4274 @item gdb/config/@var{arch}/nm-@var{xyz}.h
4275 (@file{nm.h} is a link to this file, created by @code{configure}). Contains C
4276 macro definitions describing the native system environment, such as
4277 child process control and core file support.
4278
4279 @item gdb/@var{xyz}-nat.c
4280 Contains any miscellaneous C code required for this native support of
4281 this machine. On some machines it doesn't exist at all.
4282 @end table
4283
4284 There are some ``generic'' versions of routines that can be used by
4285 various systems. These can be customized in various ways by macros
4286 defined in your @file{nm-@var{xyz}.h} file. If these routines work for
4287 the @var{xyz} host, you can just include the generic file's name (with
4288 @samp{.o}, not @samp{.c}) in @code{NATDEPFILES}.
4289
4290 Otherwise, if your machine needs custom support routines, you will need
4291 to write routines that perform the same functions as the generic file.
4292 Put them into @file{@var{xyz}-nat.c}, and put @file{@var{xyz}-nat.o}
4293 into @code{NATDEPFILES}.
4294
4295 @table @file
4296 @item inftarg.c
4297 This contains the @emph{target_ops vector} that supports Unix child
4298 processes on systems which use ptrace and wait to control the child.
4299
4300 @item procfs.c
4301 This contains the @emph{target_ops vector} that supports Unix child
4302 processes on systems which use /proc to control the child.
4303
4304 @item fork-child.c
4305 This does the low-level grunge that uses Unix system calls to do a ``fork
4306 and exec'' to start up a child process.
4307
4308 @item infptrace.c
4309 This is the low level interface to inferior processes for systems using
4310 the Unix @code{ptrace} call in a vanilla way.
4311 @end table
4312
4313 @section Native core file Support
4314 @cindex native core files
4315
4316 @table @file
4317 @findex fetch_core_registers
4318 @item core-aout.c::fetch_core_registers()
4319 Support for reading registers out of a core file. This routine calls
4320 @code{register_addr()}, see below. Now that BFD is used to read core
4321 files, virtually all machines should use @code{core-aout.c}, and should
4322 just provide @code{fetch_core_registers} in @code{@var{xyz}-nat.c} (or
4323 @code{REGISTER_U_ADDR} in @code{nm-@var{xyz}.h}).
4324
4325 @item core-aout.c::register_addr()
4326 If your @code{nm-@var{xyz}.h} file defines the macro
4327 @code{REGISTER_U_ADDR(addr, blockend, regno)}, it should be defined to
4328 set @code{addr} to the offset within the @samp{user} struct of @value{GDBN}
4329 register number @code{regno}. @code{blockend} is the offset within the
4330 ``upage'' of @code{u.u_ar0}. If @code{REGISTER_U_ADDR} is defined,
4331 @file{core-aout.c} will define the @code{register_addr()} function and
4332 use the macro in it. If you do not define @code{REGISTER_U_ADDR}, but
4333 you are using the standard @code{fetch_core_registers()}, you will need
4334 to define your own version of @code{register_addr()}, put it into your
4335 @code{@var{xyz}-nat.c} file, and be sure @code{@var{xyz}-nat.o} is in
4336 the @code{NATDEPFILES} list. If you have your own
4337 @code{fetch_core_registers()}, you may not need a separate
4338 @code{register_addr()}. Many custom @code{fetch_core_registers()}
4339 implementations simply locate the registers themselves.@refill
4340 @end table
4341
4342 When making @value{GDBN} run native on a new operating system, to make it
4343 possible to debug core files, you will need to either write specific
4344 code for parsing your OS's core files, or customize
4345 @file{bfd/trad-core.c}. First, use whatever @code{#include} files your
4346 machine uses to define the struct of registers that is accessible
4347 (possibly in the u-area) in a core file (rather than
4348 @file{machine/reg.h}), and an include file that defines whatever header
4349 exists on a core file (e.g. the u-area or a @code{struct core}). Then
4350 modify @code{trad_unix_core_file_p} to use these values to set up the
4351 section information for the data segment, stack segment, any other
4352 segments in the core file (perhaps shared library contents or control
4353 information), ``registers'' segment, and if there are two discontiguous
4354 sets of registers (e.g. integer and float), the ``reg2'' segment. This
4355 section information basically delimits areas in the core file in a
4356 standard way, which the section-reading routines in BFD know how to seek
4357 around in.
4358
4359 Then back in @value{GDBN}, you need a matching routine called
4360 @code{fetch_core_registers}. If you can use the generic one, it's in
4361 @file{core-aout.c}; if not, it's in your @file{@var{xyz}-nat.c} file.
4362 It will be passed a char pointer to the entire ``registers'' segment,
4363 its length, and a zero; or a char pointer to the entire ``regs2''
4364 segment, its length, and a 2. The routine should suck out the supplied
4365 register values and install them into @value{GDBN}'s ``registers'' array.
4366
4367 If your system uses @file{/proc} to control processes, and uses ELF
4368 format core files, then you may be able to use the same routines for
4369 reading the registers out of processes and out of core files.
4370
4371 @section ptrace
4372
4373 @section /proc
4374
4375 @section win32
4376
4377 @section shared libraries
4378
4379 @section Native Conditionals
4380 @cindex native conditionals
4381
4382 When @value{GDBN} is configured and compiled, various macros are
4383 defined or left undefined, to control compilation when the host and
4384 target systems are the same. These macros should be defined (or left
4385 undefined) in @file{nm-@var{system}.h}.
4386
4387 @table @code
4388 @item ATTACH_DETACH
4389 @findex ATTACH_DETACH
4390 If defined, then @value{GDBN} will include support for the @code{attach} and
4391 @code{detach} commands.
4392
4393 @item CHILD_PREPARE_TO_STORE
4394 @findex CHILD_PREPARE_TO_STORE
4395 If the machine stores all registers at once in the child process, then
4396 define this to ensure that all values are correct. This usually entails
4397 a read from the child.
4398
4399 [Note that this is incorrectly defined in @file{xm-@var{system}.h} files
4400 currently.]
4401
4402 @item FETCH_INFERIOR_REGISTERS
4403 @findex FETCH_INFERIOR_REGISTERS
4404 Define this if the native-dependent code will provide its own routines
4405 @code{fetch_inferior_registers} and @code{store_inferior_registers} in
4406 @file{@var{host}-nat.c}. If this symbol is @emph{not} defined, and
4407 @file{infptrace.c} is included in this configuration, the default
4408 routines in @file{infptrace.c} are used for these functions.
4409
4410 @item FILES_INFO_HOOK
4411 @findex FILES_INFO_HOOK
4412 (Only defined for Convex.)
4413
4414 @item FP0_REGNUM
4415 @findex FP0_REGNUM
4416 This macro is normally defined to be the number of the first floating
4417 point register, if the machine has such registers. As such, it would
4418 appear only in target-specific code. However, @file{/proc} support uses this
4419 to decide whether floats are in use on this target.
4420
4421 @item GET_LONGJMP_TARGET
4422 @findex GET_LONGJMP_TARGET
4423 For most machines, this is a target-dependent parameter. On the
4424 DECstation and the Iris, this is a native-dependent parameter, since
4425 @file{setjmp.h} is needed to define it.
4426
4427 This macro determines the target PC address that @code{longjmp} will jump to,
4428 assuming that we have just stopped at a longjmp breakpoint. It takes a
4429 @code{CORE_ADDR *} as argument, and stores the target PC value through this
4430 pointer. It examines the current state of the machine as needed.
4431
4432 @item I386_USE_GENERIC_WATCHPOINTS
4433 An x86-based machine can define this to use the generic x86 watchpoint
4434 support; see @ref{Algorithms, I386_USE_GENERIC_WATCHPOINTS}.
4435
4436 @item KERNEL_U_ADDR
4437 @findex KERNEL_U_ADDR
4438 Define this to the address of the @code{u} structure (the ``user
4439 struct'', also known as the ``u-page'') in kernel virtual memory. @value{GDBN}
4440 needs to know this so that it can subtract this address from absolute
4441 addresses in the upage, that are obtained via ptrace or from core files.
4442 On systems that don't need this value, set it to zero.
4443
4444 @item KERNEL_U_ADDR_BSD
4445 @findex KERNEL_U_ADDR_BSD
4446 Define this to cause @value{GDBN} to determine the address of @code{u} at
4447 runtime, by using Berkeley-style @code{nlist} on the kernel's image in
4448 the root directory.
4449
4450 @item KERNEL_U_ADDR_HPUX
4451 @findex KERNEL_U_ADDR_HPUX
4452 Define this to cause @value{GDBN} to determine the address of @code{u} at
4453 runtime, by using HP-style @code{nlist} on the kernel's image in the
4454 root directory.
4455
4456 @item ONE_PROCESS_WRITETEXT
4457 @findex ONE_PROCESS_WRITETEXT
4458 Define this to be able to, when a breakpoint insertion fails, warn the
4459 user that another process may be running with the same executable.
4460
4461 @item PREPARE_TO_PROCEED (@var{select_it})
4462 @findex PREPARE_TO_PROCEED
4463 This (ugly) macro allows a native configuration to customize the way the
4464 @code{proceed} function in @file{infrun.c} deals with switching between
4465 threads.
4466
4467 In a multi-threaded task we may select another thread and then continue
4468 or step. But if the old thread was stopped at a breakpoint, it will
4469 immediately cause another breakpoint stop without any execution (i.e. it
4470 will report a breakpoint hit incorrectly). So @value{GDBN} must step over it
4471 first.
4472
4473 If defined, @code{PREPARE_TO_PROCEED} should check the current thread
4474 against the thread that reported the most recent event. If a step-over
4475 is required, it returns TRUE. If @var{select_it} is non-zero, it should
4476 reselect the old thread.
4477
4478 @item PROC_NAME_FMT
4479 @findex PROC_NAME_FMT
4480 Defines the format for the name of a @file{/proc} device. Should be
4481 defined in @file{nm.h} @emph{only} in order to override the default
4482 definition in @file{procfs.c}.
4483
4484 @item PTRACE_FP_BUG
4485 @findex PTRACE_FP_BUG
4486 See @file{mach386-xdep.c}.
4487
4488 @item PTRACE_ARG3_TYPE
4489 @findex PTRACE_ARG3_TYPE
4490 The type of the third argument to the @code{ptrace} system call, if it
4491 exists and is different from @code{int}.
4492
4493 @item REGISTER_U_ADDR
4494 @findex REGISTER_U_ADDR
4495 Defines the offset of the registers in the ``u area''.
4496
4497 @item SHELL_COMMAND_CONCAT
4498 @findex SHELL_COMMAND_CONCAT
4499 If defined, is a string to prefix on the shell command used to start the
4500 inferior.
4501
4502 @item SHELL_FILE
4503 @findex SHELL_FILE
4504 If defined, this is the name of the shell to use to run the inferior.
4505 Defaults to @code{"/bin/sh"}.
4506
4507 @item SOLIB_ADD (@var{filename}, @var{from_tty}, @var{targ}, @var{readsyms})
4508 @findex SOLIB_ADD
4509 Define this to expand into an expression that will cause the symbols in
4510 @var{filename} to be added to @value{GDBN}'s symbol table. If
4511 @var{readsyms} is zero symbols are not read but any necessary low level
4512 processing for @var{filename} is still done.
4513
4514 @item SOLIB_CREATE_INFERIOR_HOOK
4515 @findex SOLIB_CREATE_INFERIOR_HOOK
4516 Define this to expand into any shared-library-relocation code that you
4517 want to be run just after the child process has been forked.
4518
4519 @item START_INFERIOR_TRAPS_EXPECTED
4520 @findex START_INFERIOR_TRAPS_EXPECTED
4521 When starting an inferior, @value{GDBN} normally expects to trap
4522 twice; once when
4523 the shell execs, and once when the program itself execs. If the actual
4524 number of traps is something other than 2, then define this macro to
4525 expand into the number expected.
4526
4527 @item SVR4_SHARED_LIBS
4528 @findex SVR4_SHARED_LIBS
4529 Define this to indicate that SVR4-style shared libraries are in use.
4530
4531 @item USE_PROC_FS
4532 @findex USE_PROC_FS
4533 This determines whether small routines in @file{*-tdep.c}, which
4534 translate register values between @value{GDBN}'s internal
4535 representation and the @file{/proc} representation, are compiled.
4536
4537 @item U_REGS_OFFSET
4538 @findex U_REGS_OFFSET
4539 This is the offset of the registers in the upage. It need only be
4540 defined if the generic ptrace register access routines in
4541 @file{infptrace.c} are being used (that is, @file{infptrace.c} is
4542 configured in, and @code{FETCH_INFERIOR_REGISTERS} is not defined). If
4543 the default value from @file{infptrace.c} is good enough, leave it
4544 undefined.
4545
4546 The default value means that u.u_ar0 @emph{points to} the location of
4547 the registers. I'm guessing that @code{#define U_REGS_OFFSET 0} means
4548 that @code{u.u_ar0} @emph{is} the location of the registers.
4549
4550 @item CLEAR_SOLIB
4551 @findex CLEAR_SOLIB
4552 See @file{objfiles.c}.
4553
4554 @item DEBUG_PTRACE
4555 @findex DEBUG_PTRACE
4556 Define this to debug @code{ptrace} calls.
4557 @end table
4558
4559
4560 @node Support Libraries
4561
4562 @chapter Support Libraries
4563
4564 @section BFD
4565 @cindex BFD library
4566
4567 BFD provides support for @value{GDBN} in several ways:
4568
4569 @table @emph
4570 @item identifying executable and core files
4571 BFD will identify a variety of file types, including a.out, coff, and
4572 several variants thereof, as well as several kinds of core files.
4573
4574 @item access to sections of files
4575 BFD parses the file headers to determine the names, virtual addresses,
4576 sizes, and file locations of all the various named sections in files
4577 (such as the text section or the data section). @value{GDBN} simply
4578 calls BFD to read or write section @var{x} at byte offset @var{y} for
4579 length @var{z}.
4580
4581 @item specialized core file support
4582 BFD provides routines to determine the failing command name stored in a
4583 core file, the signal with which the program failed, and whether a core
4584 file matches (i.e.@: could be a core dump of) a particular executable
4585 file.
4586
4587 @item locating the symbol information
4588 @value{GDBN} uses an internal interface of BFD to determine where to find the
4589 symbol information in an executable file or symbol-file. @value{GDBN} itself
4590 handles the reading of symbols, since BFD does not ``understand'' debug
4591 symbols, but @value{GDBN} uses BFD's cached information to find the symbols,
4592 string table, etc.
4593 @end table
4594
4595 @section opcodes
4596 @cindex opcodes library
4597
4598 The opcodes library provides @value{GDBN}'s disassembler. (It's a separate
4599 library because it's also used in binutils, for @file{objdump}).
4600
4601 @section readline
4602
4603 @section mmalloc
4604
4605 @section libiberty
4606
4607 @section gnu-regex
4608 @cindex regular expressions library
4609
4610 Regex conditionals.
4611
4612 @table @code
4613 @item C_ALLOCA
4614
4615 @item NFAILURES
4616
4617 @item RE_NREGS
4618
4619 @item SIGN_EXTEND_CHAR
4620
4621 @item SWITCH_ENUM_BUG
4622
4623 @item SYNTAX_TABLE
4624
4625 @item Sword
4626
4627 @item sparc
4628 @end table
4629
4630 @section include
4631
4632 @node Coding
4633
4634 @chapter Coding
4635
4636 This chapter covers topics that are lower-level than the major
4637 algorithms of @value{GDBN}.
4638
4639 @section Cleanups
4640 @cindex cleanups
4641
4642 Cleanups are a structured way to deal with things that need to be done
4643 later.
4644
4645 When your code does something (e.g., @code{xmalloc} some memory, or
4646 @code{open} a file) that needs to be undone later (e.g., @code{xfree}
4647 the memory or @code{close} the file), it can make a cleanup. The
4648 cleanup will be done at some future point: when the command is finished
4649 and control returns to the top level; when an error occurs and the stack
4650 is unwound; or when your code decides it's time to explicitly perform
4651 cleanups. Alternatively you can elect to discard the cleanups you
4652 created.
4653
4654 Syntax:
4655
4656 @table @code
4657 @item struct cleanup *@var{old_chain};
4658 Declare a variable which will hold a cleanup chain handle.
4659
4660 @findex make_cleanup
4661 @item @var{old_chain} = make_cleanup (@var{function}, @var{arg});
4662 Make a cleanup which will cause @var{function} to be called with
4663 @var{arg} (a @code{char *}) later. The result, @var{old_chain}, is a
4664 handle that can later be passed to @code{do_cleanups} or
4665 @code{discard_cleanups}. Unless you are going to call
4666 @code{do_cleanups} or @code{discard_cleanups}, you can ignore the result
4667 from @code{make_cleanup}.
4668
4669 @findex do_cleanups
4670 @item do_cleanups (@var{old_chain});
4671 Do all cleanups added to the chain since the corresponding
4672 @code{make_cleanup} call was made.
4673
4674 @findex discard_cleanups
4675 @item discard_cleanups (@var{old_chain});
4676 Same as @code{do_cleanups} except that it just removes the cleanups from
4677 the chain and does not call the specified functions.
4678 @end table
4679
4680 Cleanups are implemented as a chain. The handle returned by
4681 @code{make_cleanups} includes the cleanup passed to the call and any
4682 later cleanups appended to the chain (but not yet discarded or
4683 performed). E.g.:
4684
4685 @smallexample
4686 make_cleanup (a, 0);
4687 @{
4688 struct cleanup *old = make_cleanup (b, 0);
4689 make_cleanup (c, 0)
4690 ...
4691 do_cleanups (old);
4692 @}
4693 @end smallexample
4694
4695 @noindent
4696 will call @code{c()} and @code{b()} but will not call @code{a()}. The
4697 cleanup that calls @code{a()} will remain in the cleanup chain, and will
4698 be done later unless otherwise discarded.@refill
4699
4700 Your function should explicitly do or discard the cleanups it creates.
4701 Failing to do this leads to non-deterministic behavior since the caller
4702 will arbitrarily do or discard your functions cleanups. This need leads
4703 to two common cleanup styles.
4704
4705 The first style is try/finally. Before it exits, your code-block calls
4706 @code{do_cleanups} with the old cleanup chain and thus ensures that your
4707 code-block's cleanups are always performed. For instance, the following
4708 code-segment avoids a memory leak problem (even when @code{error} is
4709 called and a forced stack unwind occurs) by ensuring that the
4710 @code{xfree} will always be called:
4711
4712 @smallexample
4713 struct cleanup *old = make_cleanup (null_cleanup, 0);
4714 data = xmalloc (sizeof blah);
4715 make_cleanup (xfree, data);
4716 ... blah blah ...
4717 do_cleanups (old);
4718 @end smallexample
4719
4720 The second style is try/except. Before it exits, your code-block calls
4721 @code{discard_cleanups} with the old cleanup chain and thus ensures that
4722 any created cleanups are not performed. For instance, the following
4723 code segment, ensures that the file will be closed but only if there is
4724 an error:
4725
4726 @smallexample
4727 FILE *file = fopen ("afile", "r");
4728 struct cleanup *old = make_cleanup (close_file, file);
4729 ... blah blah ...
4730 discard_cleanups (old);
4731 return file;
4732 @end smallexample
4733
4734 Some functions, e.g. @code{fputs_filtered()} or @code{error()}, specify
4735 that they ``should not be called when cleanups are not in place''. This
4736 means that any actions you need to reverse in the case of an error or
4737 interruption must be on the cleanup chain before you call these
4738 functions, since they might never return to your code (they
4739 @samp{longjmp} instead).
4740
4741 @section Per-architecture module data
4742 @cindex per-architecture module data
4743 @cindex multi-arch data
4744 @cindex data-pointer, per-architecture/per-module
4745
4746 The multi-arch framework includes a mechanism for adding module specific
4747 per-architecture data-pointers to the @code{struct gdbarch} architecture
4748 object.
4749
4750 A module registers one or more per-architecture data-pointers using the
4751 function @code{register_gdbarch_data}:
4752
4753 @deftypefun struct gdbarch_data *register_gdbarch_data (gdbarch_data_init_ftype *@var{init}, gdbarch_data_free_ftype *@var{free})
4754
4755 The @var{init} function is used to obtain an initial value for a
4756 per-architecture data-pointer. The function is called, after the
4757 architecture has been created, when the data-pointer is still
4758 uninitialized (@code{NULL}) and its value has been requested via a call
4759 to @code{gdbarch_data}. A data-pointer can also be initialize
4760 explicitly using @code{set_gdbarch_data}.
4761
4762 The @var{free} function is called when a data-pointer needs to be
4763 destroyed. This occurs when either the corresponding @code{struct
4764 gdbarch} object is being destroyed or when @code{set_gdbarch_data} is
4765 overriding a non-@code{NULL} data-pointer value.
4766
4767 The function @code{register_gdbarch_data} returns a @code{struct
4768 gdbarch_data} that is used to identify the data-pointer that was added
4769 to the module.
4770
4771 @end deftypefun
4772
4773 A typical module has @code{init} and @code{free} functions of the form:
4774
4775 @smallexample
4776 static struct gdbarch_data *nozel_handle;
4777 static void *
4778 nozel_init (struct gdbarch *gdbarch)
4779 @{
4780 struct nozel *data = XMALLOC (struct nozel);
4781 @dots{}
4782 return data;
4783 @}
4784 @dots{}
4785 static void
4786 nozel_free (struct gdbarch *gdbarch, void *data)
4787 @{
4788 xfree (data);
4789 @}
4790 @end smallexample
4791
4792 Since uninitialized (@code{NULL}) data-pointers are initialized
4793 on-demand, an @code{init} function is free to call other modules that
4794 use data-pointers. Those modules data-pointers will be initialized as
4795 needed. Care should be taken to ensure that the @code{init} call graph
4796 does not contain cycles.
4797
4798 The data-pointer is registered with the call:
4799
4800 @smallexample
4801 void
4802 _initialize_nozel (void)
4803 @{
4804 nozel_handle = register_gdbarch_data (nozel_init, nozel_free);
4805 @dots{}
4806 @end smallexample
4807
4808 The per-architecture data-pointer is accessed using the function:
4809
4810 @deftypefun void *gdbarch_data (struct gdbarch *@var{gdbarch}, struct gdbarch_data *@var{data_handle})
4811 Given the architecture @var{arch} and module data handle
4812 @var{data_handle} (returned by @code{register_gdbarch_data}, this
4813 function returns the current value of the per-architecture data-pointer.
4814 @end deftypefun
4815
4816 The non-@code{NULL} data-pointer returned by @code{gdbarch_data} should
4817 be saved in a local variable and then used directly:
4818
4819 @smallexample
4820 int
4821 nozel_total (struct gdbarch *gdbarch)
4822 @{
4823 int total;
4824 struct nozel *data = gdbarch_data (gdbarch, nozel_handle);
4825 @dots{}
4826 return total;
4827 @}
4828 @end smallexample
4829
4830 It is also possible to directly initialize the data-pointer using:
4831
4832 @deftypefun void set_gdbarch_data (struct gdbarch *@var{gdbarch}, struct gdbarch_data *handle, void *@var{pointer})
4833 Update the data-pointer corresponding to @var{handle} with the value of
4834 @var{pointer}. If the previous data-pointer value is non-NULL, then it
4835 is freed using data-pointers @var{free} function.
4836 @end deftypefun
4837
4838 This function is used by modules that require a mechanism for explicitly
4839 setting the per-architecture data-pointer during architecture creation:
4840
4841 @smallexample
4842 /* Called during architecture creation. */
4843 extern void
4844 set_gdbarch_nozel (struct gdbarch *gdbarch,
4845 int total)
4846 @{
4847 struct nozel *data = XMALLOC (struct nozel);
4848 @dots{}
4849 set_gdbarch_data (gdbarch, nozel_handle, nozel);
4850 @}
4851 @end smallexample
4852
4853 @smallexample
4854 /* Default, called when nozel not set by set_gdbarch_nozel(). */
4855 static void *
4856 nozel_init (struct gdbarch *gdbarch)
4857 @{
4858 struct nozel *default_nozel = XMALLOC (struc nozel);
4859 @dots{}
4860 return default_nozel;
4861 @}
4862 @end smallexample
4863
4864 @smallexample
4865 void
4866 _initialize_nozel (void)
4867 @{
4868 nozel_handle = register_gdbarch_data (nozel_init, NULL);
4869 @dots{}
4870 @end smallexample
4871
4872 @noindent
4873 Note that an @code{init} function still needs to be registered. It is
4874 used to initialize the data-pointer when the architecture creation phase
4875 fail to set an initial value.
4876
4877
4878 @section Wrapping Output Lines
4879 @cindex line wrap in output
4880
4881 @findex wrap_here
4882 Output that goes through @code{printf_filtered} or @code{fputs_filtered}
4883 or @code{fputs_demangled} needs only to have calls to @code{wrap_here}
4884 added in places that would be good breaking points. The utility
4885 routines will take care of actually wrapping if the line width is
4886 exceeded.
4887
4888 The argument to @code{wrap_here} is an indentation string which is
4889 printed @emph{only} if the line breaks there. This argument is saved
4890 away and used later. It must remain valid until the next call to
4891 @code{wrap_here} or until a newline has been printed through the
4892 @code{*_filtered} functions. Don't pass in a local variable and then
4893 return!
4894
4895 It is usually best to call @code{wrap_here} after printing a comma or
4896 space. If you call it before printing a space, make sure that your
4897 indentation properly accounts for the leading space that will print if
4898 the line wraps there.
4899
4900 Any function or set of functions that produce filtered output must
4901 finish by printing a newline, to flush the wrap buffer, before switching
4902 to unfiltered (@code{printf}) output. Symbol reading routines that
4903 print warnings are a good example.
4904
4905 @section @value{GDBN} Coding Standards
4906 @cindex coding standards
4907
4908 @value{GDBN} follows the GNU coding standards, as described in
4909 @file{etc/standards.texi}. This file is also available for anonymous
4910 FTP from GNU archive sites. @value{GDBN} takes a strict interpretation
4911 of the standard; in general, when the GNU standard recommends a practice
4912 but does not require it, @value{GDBN} requires it.
4913
4914 @value{GDBN} follows an additional set of coding standards specific to
4915 @value{GDBN}, as described in the following sections.
4916
4917
4918 @subsection ISO C
4919
4920 @value{GDBN} assumes an ISO/IEC 9899:1990 (a.k.a.@: ISO C90) compliant
4921 compiler.
4922
4923 @value{GDBN} does not assume an ISO C or POSIX compliant C library.
4924
4925
4926 @subsection Memory Management
4927
4928 @value{GDBN} does not use the functions @code{malloc}, @code{realloc},
4929 @code{calloc}, @code{free} and @code{asprintf}.
4930
4931 @value{GDBN} uses the functions @code{xmalloc}, @code{xrealloc} and
4932 @code{xcalloc} when allocating memory. Unlike @code{malloc} et.al.@:
4933 these functions do not return when the memory pool is empty. Instead,
4934 they unwind the stack using cleanups. These functions return
4935 @code{NULL} when requested to allocate a chunk of memory of size zero.
4936
4937 @emph{Pragmatics: By using these functions, the need to check every
4938 memory allocation is removed. These functions provide portable
4939 behavior.}
4940
4941 @value{GDBN} does not use the function @code{free}.
4942
4943 @value{GDBN} uses the function @code{xfree} to return memory to the
4944 memory pool. Consistent with ISO-C, this function ignores a request to
4945 free a @code{NULL} pointer.
4946
4947 @emph{Pragmatics: On some systems @code{free} fails when passed a
4948 @code{NULL} pointer.}
4949
4950 @value{GDBN} can use the non-portable function @code{alloca} for the
4951 allocation of small temporary values (such as strings).
4952
4953 @emph{Pragmatics: This function is very non-portable. Some systems
4954 restrict the memory being allocated to no more than a few kilobytes.}
4955
4956 @value{GDBN} uses the string function @code{xstrdup} and the print
4957 function @code{xasprintf}.
4958
4959 @emph{Pragmatics: @code{asprintf} and @code{strdup} can fail. Print
4960 functions such as @code{sprintf} are very prone to buffer overflow
4961 errors.}
4962
4963
4964 @subsection Compiler Warnings
4965 @cindex compiler warnings
4966
4967 With few exceptions, developers should include the configuration option
4968 @samp{--enable-gdb-build-warnings=,-Werror} when building @value{GDBN}.
4969 The exceptions are listed in the file @file{gdb/MAINTAINERS}.
4970
4971 This option causes @value{GDBN} (when built using GCC) to be compiled
4972 with a carefully selected list of compiler warning flags. Any warnings
4973 from those flags being treated as errors.
4974
4975 The current list of warning flags includes:
4976
4977 @table @samp
4978 @item -Wimplicit
4979 Since @value{GDBN} coding standard requires all functions to be declared
4980 using a prototype, the flag has the side effect of ensuring that
4981 prototyped functions are always visible with out resorting to
4982 @samp{-Wstrict-prototypes}.
4983
4984 @item -Wreturn-type
4985 Such code often appears to work except on instruction set architectures
4986 that use register windows.
4987
4988 @item -Wcomment
4989
4990 @item -Wtrigraphs
4991
4992 @item -Wformat
4993 Since @value{GDBN} uses the @code{format printf} attribute on all
4994 @code{printf} like functions this checks not just @code{printf} calls
4995 but also calls to functions such as @code{fprintf_unfiltered}.
4996
4997 @item -Wparentheses
4998 This warning includes uses of the assignment operator within an
4999 @code{if} statement.
5000
5001 @item -Wpointer-arith
5002
5003 @item -Wuninitialized
5004 @end table
5005
5006 @emph{Pragmatics: Due to the way that @value{GDBN} is implemented most
5007 functions have unused parameters. Consequently the warning
5008 @samp{-Wunused-parameter} is precluded from the list. The macro
5009 @code{ATTRIBUTE_UNUSED} is not used as it leads to false negatives ---
5010 it is not an error to have @code{ATTRIBUTE_UNUSED} on a parameter that
5011 is being used. The options @samp{-Wall} and @samp{-Wunused} are also
5012 precluded because they both include @samp{-Wunused-parameter}.}
5013
5014 @emph{Pragmatics: @value{GDBN} has not simply accepted the warnings
5015 enabled by @samp{-Wall -Werror -W...}. Instead it is selecting warnings
5016 when and where their benefits can be demonstrated.}
5017
5018 @subsection Formatting
5019
5020 @cindex source code formatting
5021 The standard GNU recommendations for formatting must be followed
5022 strictly.
5023
5024 A function declaration should not have its name in column zero. A
5025 function definition should have its name in column zero.
5026
5027 @smallexample
5028 /* Declaration */
5029 static void foo (void);
5030 /* Definition */
5031 void
5032 foo (void)
5033 @{
5034 @}
5035 @end smallexample
5036
5037 @emph{Pragmatics: This simplifies scripting. Function definitions can
5038 be found using @samp{^function-name}.}
5039
5040 There must be a space between a function or macro name and the opening
5041 parenthesis of its argument list (except for macro definitions, as
5042 required by C). There must not be a space after an open paren/bracket
5043 or before a close paren/bracket.
5044
5045 While additional whitespace is generally helpful for reading, do not use
5046 more than one blank line to separate blocks, and avoid adding whitespace
5047 after the end of a program line (as of 1/99, some 600 lines had
5048 whitespace after the semicolon). Excess whitespace causes difficulties
5049 for @code{diff} and @code{patch} utilities.
5050
5051 Pointers are declared using the traditional K&R C style:
5052
5053 @smallexample
5054 void *foo;
5055 @end smallexample
5056
5057 @noindent
5058 and not:
5059
5060 @smallexample
5061 void * foo;
5062 void* foo;
5063 @end smallexample
5064
5065 @subsection Comments
5066
5067 @cindex comment formatting
5068 The standard GNU requirements on comments must be followed strictly.
5069
5070 Block comments must appear in the following form, with no @code{/*}- or
5071 @code{*/}-only lines, and no leading @code{*}:
5072
5073 @smallexample
5074 /* Wait for control to return from inferior to debugger. If inferior
5075 gets a signal, we may decide to start it up again instead of
5076 returning. That is why there is a loop in this function. When
5077 this function actually returns it means the inferior should be left
5078 stopped and @value{GDBN} should read more commands. */
5079 @end smallexample
5080
5081 (Note that this format is encouraged by Emacs; tabbing for a multi-line
5082 comment works correctly, and @kbd{M-q} fills the block consistently.)
5083
5084 Put a blank line between the block comments preceding function or
5085 variable definitions, and the definition itself.
5086
5087 In general, put function-body comments on lines by themselves, rather
5088 than trying to fit them into the 20 characters left at the end of a
5089 line, since either the comment or the code will inevitably get longer
5090 than will fit, and then somebody will have to move it anyhow.
5091
5092 @subsection C Usage
5093
5094 @cindex C data types
5095 Code must not depend on the sizes of C data types, the format of the
5096 host's floating point numbers, the alignment of anything, or the order
5097 of evaluation of expressions.
5098
5099 @cindex function usage
5100 Use functions freely. There are only a handful of compute-bound areas
5101 in @value{GDBN} that might be affected by the overhead of a function
5102 call, mainly in symbol reading. Most of @value{GDBN}'s performance is
5103 limited by the target interface (whether serial line or system call).
5104
5105 However, use functions with moderation. A thousand one-line functions
5106 are just as hard to understand as a single thousand-line function.
5107
5108 @emph{Macros are bad, M'kay.}
5109 (But if you have to use a macro, make sure that the macro arguments are
5110 protected with parentheses.)
5111
5112 @cindex types
5113
5114 Declarations like @samp{struct foo *} should be used in preference to
5115 declarations like @samp{typedef struct foo @{ @dots{} @} *foo_ptr}.
5116
5117
5118 @subsection Function Prototypes
5119 @cindex function prototypes
5120
5121 Prototypes must be used when both @emph{declaring} and @emph{defining}
5122 a function. Prototypes for @value{GDBN} functions must include both the
5123 argument type and name, with the name matching that used in the actual
5124 function definition.
5125
5126 All external functions should have a declaration in a header file that
5127 callers include, except for @code{_initialize_*} functions, which must
5128 be external so that @file{init.c} construction works, but shouldn't be
5129 visible to random source files.
5130
5131 Where a source file needs a forward declaration of a static function,
5132 that declaration must appear in a block near the top of the source file.
5133
5134
5135 @subsection Internal Error Recovery
5136
5137 During its execution, @value{GDBN} can encounter two types of errors.
5138 User errors and internal errors. User errors include not only a user
5139 entering an incorrect command but also problems arising from corrupt
5140 object files and system errors when interacting with the target.
5141 Internal errors include situations where @value{GDBN} has detected, at
5142 run time, a corrupt or erroneous situation.
5143
5144 When reporting an internal error, @value{GDBN} uses
5145 @code{internal_error} and @code{gdb_assert}.
5146
5147 @value{GDBN} must not call @code{abort} or @code{assert}.
5148
5149 @emph{Pragmatics: There is no @code{internal_warning} function. Either
5150 the code detected a user error, recovered from it and issued a
5151 @code{warning} or the code failed to correctly recover from the user
5152 error and issued an @code{internal_error}.}
5153
5154 @subsection File Names
5155
5156 Any file used when building the core of @value{GDBN} must be in lower
5157 case. Any file used when building the core of @value{GDBN} must be 8.3
5158 unique. These requirements apply to both source and generated files.
5159
5160 @emph{Pragmatics: The core of @value{GDBN} must be buildable on many
5161 platforms including DJGPP and MacOS/HFS. Every time an unfriendly file
5162 is introduced to the build process both @file{Makefile.in} and
5163 @file{configure.in} need to be modified accordingly. Compare the
5164 convoluted conversion process needed to transform @file{COPYING} into
5165 @file{copying.c} with the conversion needed to transform
5166 @file{version.in} into @file{version.c}.}
5167
5168 Any file non 8.3 compliant file (that is not used when building the core
5169 of @value{GDBN}) must be added to @file{gdb/config/djgpp/fnchange.lst}.
5170
5171 @emph{Pragmatics: This is clearly a compromise.}
5172
5173 When @value{GDBN} has a local version of a system header file (ex
5174 @file{string.h}) the file name based on the POSIX header prefixed with
5175 @file{gdb_} (@file{gdb_string.h}).
5176
5177 For other files @samp{-} is used as the separator.
5178
5179
5180 @subsection Include Files
5181
5182 A @file{.c} file should include @file{defs.h} first.
5183
5184 A @file{.c} file should directly include the @code{.h} file of every
5185 declaration and/or definition it directly refers to. It cannot rely on
5186 indirect inclusion.
5187
5188 A @file{.h} file should directly include the @code{.h} file of every
5189 declaration and/or definition it directly refers to. It cannot rely on
5190 indirect inclusion. Exception: The file @file{defs.h} does not need to
5191 be directly included.
5192
5193 An external declaration should only appear in one include file.
5194
5195 An external declaration should never appear in a @code{.c} file.
5196 Exception: a declaration for the @code{_initialize} function that
5197 pacifies @option{-Wmissing-declaration}.
5198
5199 A @code{typedef} definition should only appear in one include file.
5200
5201 An opaque @code{struct} declaration can appear in multiple @file{.h}
5202 files. Where possible, a @file{.h} file should use an opaque
5203 @code{struct} declaration instead of an include.
5204
5205 All @file{.h} files should be wrapped in:
5206
5207 @smallexample
5208 #ifndef INCLUDE_FILE_NAME_H
5209 #define INCLUDE_FILE_NAME_H
5210 header body
5211 #endif
5212 @end smallexample
5213
5214
5215 @subsection Clean Design and Portable Implementation
5216
5217 @cindex design
5218 In addition to getting the syntax right, there's the little question of
5219 semantics. Some things are done in certain ways in @value{GDBN} because long
5220 experience has shown that the more obvious ways caused various kinds of
5221 trouble.
5222
5223 @cindex assumptions about targets
5224 You can't assume the byte order of anything that comes from a target
5225 (including @var{value}s, object files, and instructions). Such things
5226 must be byte-swapped using @code{SWAP_TARGET_AND_HOST} in
5227 @value{GDBN}, or one of the swap routines defined in @file{bfd.h},
5228 such as @code{bfd_get_32}.
5229
5230 You can't assume that you know what interface is being used to talk to
5231 the target system. All references to the target must go through the
5232 current @code{target_ops} vector.
5233
5234 You can't assume that the host and target machines are the same machine
5235 (except in the ``native'' support modules). In particular, you can't
5236 assume that the target machine's header files will be available on the
5237 host machine. Target code must bring along its own header files --
5238 written from scratch or explicitly donated by their owner, to avoid
5239 copyright problems.
5240
5241 @cindex portability
5242 Insertion of new @code{#ifdef}'s will be frowned upon. It's much better
5243 to write the code portably than to conditionalize it for various
5244 systems.
5245
5246 @cindex system dependencies
5247 New @code{#ifdef}'s which test for specific compilers or manufacturers
5248 or operating systems are unacceptable. All @code{#ifdef}'s should test
5249 for features. The information about which configurations contain which
5250 features should be segregated into the configuration files. Experience
5251 has proven far too often that a feature unique to one particular system
5252 often creeps into other systems; and that a conditional based on some
5253 predefined macro for your current system will become worthless over
5254 time, as new versions of your system come out that behave differently
5255 with regard to this feature.
5256
5257 Adding code that handles specific architectures, operating systems,
5258 target interfaces, or hosts, is not acceptable in generic code.
5259
5260 @cindex portable file name handling
5261 @cindex file names, portability
5262 One particularly notorious area where system dependencies tend to
5263 creep in is handling of file names. The mainline @value{GDBN} code
5264 assumes Posix semantics of file names: absolute file names begin with
5265 a forward slash @file{/}, slashes are used to separate leading
5266 directories, case-sensitive file names. These assumptions are not
5267 necessarily true on non-Posix systems such as MS-Windows. To avoid
5268 system-dependent code where you need to take apart or construct a file
5269 name, use the following portable macros:
5270
5271 @table @code
5272 @findex HAVE_DOS_BASED_FILE_SYSTEM
5273 @item HAVE_DOS_BASED_FILE_SYSTEM
5274 This preprocessing symbol is defined to a non-zero value on hosts
5275 whose filesystems belong to the MS-DOS/MS-Windows family. Use this
5276 symbol to write conditional code which should only be compiled for
5277 such hosts.
5278
5279 @findex IS_DIR_SEPARATOR
5280 @item IS_DIR_SEPARATOR (@var{c})
5281 Evaluates to a non-zero value if @var{c} is a directory separator
5282 character. On Unix and GNU/Linux systems, only a slash @file{/} is
5283 such a character, but on Windows, both @file{/} and @file{\} will
5284 pass.
5285
5286 @findex IS_ABSOLUTE_PATH
5287 @item IS_ABSOLUTE_PATH (@var{file})
5288 Evaluates to a non-zero value if @var{file} is an absolute file name.
5289 For Unix and GNU/Linux hosts, a name which begins with a slash
5290 @file{/} is absolute. On DOS and Windows, @file{d:/foo} and
5291 @file{x:\bar} are also absolute file names.
5292
5293 @findex FILENAME_CMP
5294 @item FILENAME_CMP (@var{f1}, @var{f2})
5295 Calls a function which compares file names @var{f1} and @var{f2} as
5296 appropriate for the underlying host filesystem. For Posix systems,
5297 this simply calls @code{strcmp}; on case-insensitive filesystems it
5298 will call @code{strcasecmp} instead.
5299
5300 @findex DIRNAME_SEPARATOR
5301 @item DIRNAME_SEPARATOR
5302 Evaluates to a character which separates directories in
5303 @code{PATH}-style lists, typically held in environment variables.
5304 This character is @samp{:} on Unix, @samp{;} on DOS and Windows.
5305
5306 @findex SLASH_STRING
5307 @item SLASH_STRING
5308 This evaluates to a constant string you should use to produce an
5309 absolute filename from leading directories and the file's basename.
5310 @code{SLASH_STRING} is @code{"/"} on most systems, but might be
5311 @code{"\\"} for some Windows-based ports.
5312 @end table
5313
5314 In addition to using these macros, be sure to use portable library
5315 functions whenever possible. For example, to extract a directory or a
5316 basename part from a file name, use the @code{dirname} and
5317 @code{basename} library functions (available in @code{libiberty} for
5318 platforms which don't provide them), instead of searching for a slash
5319 with @code{strrchr}.
5320
5321 Another way to generalize @value{GDBN} along a particular interface is with an
5322 attribute struct. For example, @value{GDBN} has been generalized to handle
5323 multiple kinds of remote interfaces---not by @code{#ifdef}s everywhere, but
5324 by defining the @code{target_ops} structure and having a current target (as
5325 well as a stack of targets below it, for memory references). Whenever
5326 something needs to be done that depends on which remote interface we are
5327 using, a flag in the current target_ops structure is tested (e.g.,
5328 @code{target_has_stack}), or a function is called through a pointer in the
5329 current target_ops structure. In this way, when a new remote interface
5330 is added, only one module needs to be touched---the one that actually
5331 implements the new remote interface. Other examples of
5332 attribute-structs are BFD access to multiple kinds of object file
5333 formats, or @value{GDBN}'s access to multiple source languages.
5334
5335 Please avoid duplicating code. For example, in @value{GDBN} 3.x all
5336 the code interfacing between @code{ptrace} and the rest of
5337 @value{GDBN} was duplicated in @file{*-dep.c}, and so changing
5338 something was very painful. In @value{GDBN} 4.x, these have all been
5339 consolidated into @file{infptrace.c}. @file{infptrace.c} can deal
5340 with variations between systems the same way any system-independent
5341 file would (hooks, @code{#if defined}, etc.), and machines which are
5342 radically different don't need to use @file{infptrace.c} at all.
5343
5344 All debugging code must be controllable using the @samp{set debug
5345 @var{module}} command. Do not use @code{printf} to print trace
5346 messages. Use @code{fprintf_unfiltered(gdb_stdlog, ...}. Do not use
5347 @code{#ifdef DEBUG}.
5348
5349
5350 @node Porting GDB
5351
5352 @chapter Porting @value{GDBN}
5353 @cindex porting to new machines
5354
5355 Most of the work in making @value{GDBN} compile on a new machine is in
5356 specifying the configuration of the machine. This is done in a
5357 dizzying variety of header files and configuration scripts, which we
5358 hope to make more sensible soon. Let's say your new host is called an
5359 @var{xyz} (e.g., @samp{sun4}), and its full three-part configuration
5360 name is @code{@var{arch}-@var{xvend}-@var{xos}} (e.g.,
5361 @samp{sparc-sun-sunos4}). In particular:
5362
5363 @itemize @bullet
5364 @item
5365 In the top level directory, edit @file{config.sub} and add @var{arch},
5366 @var{xvend}, and @var{xos} to the lists of supported architectures,
5367 vendors, and operating systems near the bottom of the file. Also, add
5368 @var{xyz} as an alias that maps to
5369 @code{@var{arch}-@var{xvend}-@var{xos}}. You can test your changes by
5370 running
5371
5372 @smallexample
5373 ./config.sub @var{xyz}
5374 @end smallexample
5375
5376 @noindent
5377 and
5378
5379 @smallexample
5380 ./config.sub @code{@var{arch}-@var{xvend}-@var{xos}}
5381 @end smallexample
5382
5383 @noindent
5384 which should both respond with @code{@var{arch}-@var{xvend}-@var{xos}}
5385 and no error messages.
5386
5387 @noindent
5388 You need to port BFD, if that hasn't been done already. Porting BFD is
5389 beyond the scope of this manual.
5390
5391 @item
5392 To configure @value{GDBN} itself, edit @file{gdb/configure.host} to recognize
5393 your system and set @code{gdb_host} to @var{xyz}, and (unless your
5394 desired target is already available) also edit @file{gdb/configure.tgt},
5395 setting @code{gdb_target} to something appropriate (for instance,
5396 @var{xyz}).
5397
5398 @emph{Maintainer's note: Work in progress. The file
5399 @file{gdb/configure.host} originally needed to be modified when either a
5400 new native target or a new host machine was being added to @value{GDBN}.
5401 Recent changes have removed this requirement. The file now only needs
5402 to be modified when adding a new native configuration. This will likely
5403 changed again in the future.}
5404
5405 @item
5406 Finally, you'll need to specify and define @value{GDBN}'s host-, native-, and
5407 target-dependent @file{.h} and @file{.c} files used for your
5408 configuration.
5409 @end itemize
5410
5411 @node Releasing GDB
5412
5413 @chapter Releasing @value{GDBN}
5414 @cindex making a new release of gdb
5415
5416 @section Versions and Branches
5417
5418 @subsection Version Identifiers
5419
5420 @value{GDBN}'s version is determined by the file @file{gdb/version.in}.
5421
5422 @value{GDBN}'s mainline uses ISO dates to differentiate between
5423 versions. The CVS repository uses @var{YYYY}-@var{MM}-@var{DD}-cvs
5424 while the corresponding snapshot uses @var{YYYYMMDD}.
5425
5426 @value{GDBN}'s release branch uses a slightly more complicated scheme.
5427 When the branch is first cut, the mainline version identifier is
5428 prefixed with the @var{major}.@var{minor} from of the previous release
5429 series but with .90 appended. As draft releases are drawn from the
5430 branch, the minor minor number (.90) is incremented. Once the first
5431 release (@var{M}.@var{N}) has been made, the version prefix is updated
5432 to @var{M}.@var{N}.0.90 (dot zero, dot ninety). Follow on releases have
5433 an incremented minor minor version number (.0).
5434
5435 Using 5.1 (previous) and 5.2 (current), the example below illustrates a
5436 typical sequence of version identifiers:
5437
5438 @table @asis
5439 @item 5.1.1
5440 final release from previous branch
5441 @item 2002-03-03-cvs
5442 main-line the day the branch is cut
5443 @item 5.1.90-2002-03-03-cvs
5444 corresponding branch version
5445 @item 5.1.91
5446 first draft release candidate
5447 @item 5.1.91-2002-03-17-cvs
5448 updated branch version
5449 @item 5.1.92
5450 second draft release candidate
5451 @item 5.1.92-2002-03-31-cvs
5452 updated branch version
5453 @item 5.1.93
5454 final release candidate (see below)
5455 @item 5.2
5456 official release
5457 @item 5.2.0.90-2002-04-07-cvs
5458 updated CVS branch version
5459 @item 5.2.1
5460 second official release
5461 @end table
5462
5463 Notes:
5464
5465 @itemize @bullet
5466 @item
5467 Minor minor minor draft release candidates such as 5.2.0.91 have been
5468 omitted from the example. Such release candidates are, typically, never
5469 made.
5470 @item
5471 For 5.1.93 the bziped tar ball @file{gdb-5.1.93.tar.bz2} is just the
5472 official @file{gdb-5.2.tar} renamed and compressed.
5473 @end itemize
5474
5475 To avoid version conflicts, vendors are expected to modify the file
5476 @file{gdb/version.in} to include a vendor unique alphabetic identifier
5477 (an official @value{GDBN} release never uses alphabetic characters in
5478 its version identifer).
5479
5480 Since @value{GDBN} does not make minor minor minor releases (e.g.,
5481 5.1.0.1) the conflict between that and a minor minor draft release
5482 identifier (e.g., 5.1.0.90) is avoided.
5483
5484
5485 @subsection Branches
5486
5487 @value{GDBN} draws a release series (5.2, 5.2.1, @dots{}) from a single
5488 release branch (gdb_5_2-branch). Since minor minor minor releases
5489 (5.1.0.1) are not made, the need to branch the release branch is avoided
5490 (it also turns out that the effort required for such a a branch and
5491 release is significantly greater than the effort needed to create a new
5492 release from the head of the release branch).
5493
5494 Releases 5.0 and 5.1 used branch and release tags of the form:
5495
5496 @smallexample
5497 gdb_N_M-YYYY-MM-DD-branchpoint
5498 gdb_N_M-YYYY-MM-DD-branch
5499 gdb_M_N-YYYY-MM-DD-release
5500 @end smallexample
5501
5502 Release 5.2 is trialing the branch and release tags:
5503
5504 @smallexample
5505 gdb_N_M-YYYY-MM-DD-branchpoint
5506 gdb_N_M-branch
5507 gdb_M_N-YYYY-MM-DD-release
5508 @end smallexample
5509
5510 @emph{Pragmatics: The branchpoint and release tags need to identify when
5511 a branch and release are made. The branch tag, denoting the head of the
5512 branch, does not have this criteria.}
5513
5514
5515 @section Branch Commit Policy
5516
5517 The branch commit policy is pretty slack. @value{GDBN} releases 5.0,
5518 5.1 and 5.2 all used the below:
5519
5520 @itemize @bullet
5521 @item
5522 The @file{gdb/MAINTAINERS} file still holds.
5523 @item
5524 Don't fix something on the branch unless/until it is also fixed in the
5525 trunk. If this isn't possible, mentioning it in the @file{gdb/PROBLEMS}
5526 file is better than committing a hack.
5527 @item
5528 When considering a patch for the branch, suggested criteria include:
5529 Does it fix a build? Does it fix the sequence @kbd{break main; run}
5530 when debugging a static binary?
5531 @item
5532 The further a change is from the core of @value{GDBN}, the less likely
5533 the change will worry anyone (e.g., target specific code).
5534 @item
5535 Only post a proposal to change the core of @value{GDBN} after you've
5536 sent individual bribes to all the people listed in the
5537 @file{MAINTAINERS} file @t{;-)}
5538 @end itemize
5539
5540 @emph{Pragmatics: Provided updates are restricted to non-core
5541 functionality there is little chance that a broken change will be fatal.
5542 This means that changes such as adding a new architectures or (within
5543 reason) support for a new host are considered acceptable.}
5544
5545
5546 @section Obsoleting code
5547
5548 Before anything else, poke the other developers (and around the source
5549 code) to see if there is anything that can be removed from @value{GDBN}
5550 (an old target, an unused file).
5551
5552 Obsolete code is identified by adding an @code{OBSOLETE} prefix to every
5553 line. Doing this means that it is easy to identify something that has
5554 been obsoleted when greping through the sources.
5555
5556 The process is done in stages --- this is mainly to ensure that the
5557 wider @value{GDBN} community has a reasonable opportunity to respond.
5558 Remember, everything on the Internet takes a week.
5559
5560 @enumerate
5561 @item
5562 Post the proposal on @email{gdb@@sources.redhat.com, the GDB mailing
5563 list} Creating a bug report to track the task's state, is also highly
5564 recommended.
5565 @item
5566 Wait a week or so.
5567 @item
5568 Post the proposal on @email{gdb-announce@@sources.redhat.com, the GDB
5569 Announcement mailing list}.
5570 @item
5571 Wait a week or so.
5572 @item
5573 Go through and edit all relevant files and lines so that they are
5574 prefixed with the word @code{OBSOLETE}.
5575 @item
5576 Wait until the next GDB version, containing this obsolete code, has been
5577 released.
5578 @item
5579 Remove the obsolete code.
5580 @end enumerate
5581
5582 @noindent
5583 @emph{Maintainer note: While removing old code is regrettable it is
5584 hopefully better for @value{GDBN}'s long term development. Firstly it
5585 helps the developers by removing code that is either no longer relevant
5586 or simply wrong. Secondly since it removes any history associated with
5587 the file (effectively clearing the slate) the developer has a much freer
5588 hand when it comes to fixing broken files.}
5589
5590
5591
5592 @section Before the Branch
5593
5594 The most important objective at this stage is to find and fix simple
5595 changes that become a pain to track once the branch is created. For
5596 instance, configuration problems that stop @value{GDBN} from even
5597 building. If you can't get the problem fixed, document it in the
5598 @file{gdb/PROBLEMS} file.
5599
5600 @subheading Prompt for @file{gdb/NEWS}
5601
5602 People always forget. Send a post reminding them but also if you know
5603 something interesting happened add it yourself. The @code{schedule}
5604 script will mention this in its e-mail.
5605
5606 @subheading Review @file{gdb/README}
5607
5608 Grab one of the nightly snapshots and then walk through the
5609 @file{gdb/README} looking for anything that can be improved. The
5610 @code{schedule} script will mention this in its e-mail.
5611
5612 @subheading Refresh any imported files.
5613
5614 A number of files are taken from external repositories. They include:
5615
5616 @itemize @bullet
5617 @item
5618 @file{texinfo/texinfo.tex}
5619 @item
5620 @file{config.guess} et.@: al.@: (see the top-level @file{MAINTAINERS}
5621 file)
5622 @item
5623 @file{etc/standards.texi}, @file{etc/make-stds.texi}
5624 @end itemize
5625
5626 @subheading Check the ARI
5627
5628 @uref{http://sources.redhat.com/gdb/ari,,A.R.I.} is an @code{awk} script
5629 (Awk Regression Index ;-) that checks for a number of errors and coding
5630 conventions. The checks include things like using @code{malloc} instead
5631 of @code{xmalloc} and file naming problems. There shouldn't be any
5632 regressions.
5633
5634 @subsection Review the bug data base
5635
5636 Close anything obviously fixed.
5637
5638 @subsection Check all cross targets build
5639
5640 The targets are listed in @file{gdb/MAINTAINERS}.
5641
5642
5643 @section Cut the Branch
5644
5645 @subheading Create the branch
5646
5647 @smallexample
5648 $ u=5.1
5649 $ v=5.2
5650 $ V=`echo $v | sed 's/\./_/g'`
5651 $ D=`date -u +%Y-%m-%d`
5652 $ echo $u $V $D
5653 5.1 5_2 2002-03-03
5654 $ echo cvs -f -d :ext:sources.redhat.com:/cvs/src rtag \
5655 -D $D-gmt gdb_$V-$D-branchpoint insight+dejagnu
5656 cvs -f -d :ext:sources.redhat.com:/cvs/src rtag
5657 -D 2002-03-03-gmt gdb_5_2-2002-03-03-branchpoint insight+dejagnu
5658 $ ^echo ^^
5659 ...
5660 $ echo cvs -f -d :ext:sources.redhat.com:/cvs/src rtag \
5661 -b -r gdb_$V-$D-branchpoint gdb_$V-branch insight+dejagnu
5662 cvs -f -d :ext:sources.redhat.com:/cvs/src rtag \
5663 -b -r gdb_5_2-2002-03-03-branchpoint gdb_5_2-branch insight+dejagnu
5664 $ ^echo ^^
5665 ...
5666 $
5667 @end smallexample
5668
5669 @itemize @bullet
5670 @item
5671 by using @kbd{-D YYYY-MM-DD-gmt} the branch is forced to an exact
5672 date/time.
5673 @item
5674 the trunk is first taged so that the branch point can easily be found
5675 @item
5676 Insight (which includes GDB) and dejagnu are all tagged at the same time
5677 @item
5678 @file{version.in} gets bumped to avoid version number conflicts
5679 @item
5680 the reading of @file{.cvsrc} is disabled using @file{-f}
5681 @end itemize
5682
5683 @subheading Update @file{version.in}
5684
5685 @smallexample
5686 $ u=5.1
5687 $ v=5.2
5688 $ V=`echo $v | sed 's/\./_/g'`
5689 $ echo $u $v$V
5690 5.1 5_2
5691 $ cd /tmp
5692 $ echo cvs -f -d :ext:sources.redhat.com:/cvs/src co \
5693 -r gdb_$V-branch src/gdb/version.in
5694 cvs -f -d :ext:sources.redhat.com:/cvs/src co
5695 -r gdb_5_2-branch src/gdb/version.in
5696 $ ^echo ^^
5697 U src/gdb/version.in
5698 $ cd src/gdb
5699 $ echo $u.90-0000-00-00-cvs > version.in
5700 $ cat version.in
5701 5.1.90-0000-00-00-cvs
5702 $ cvs -f commit version.in
5703 @end smallexample
5704
5705 @itemize @bullet
5706 @item
5707 @file{0000-00-00} is used as a date to pump prime the version.in update
5708 mechanism
5709 @item
5710 @file{.90} and the previous branch version are used as fairly arbitrary
5711 initial branch version number
5712 @end itemize
5713
5714
5715 @subheading Update the web and news pages
5716
5717 Something?
5718
5719 @subheading Tweak cron to track the new branch
5720
5721 The file @file{gdbadmin/cron/crontab} contains gdbadmin's cron table.
5722 This file needs to be updated so that:
5723
5724 @itemize @bullet
5725 @item
5726 a daily timestamp is added to the file @file{version.in}
5727 @item
5728 the new branch is included in the snapshot process
5729 @end itemize
5730
5731 @noindent
5732 See the file @file{gdbadmin/cron/README} for how to install the updated
5733 cron table.
5734
5735 The file @file{gdbadmin/ss/README} should also be reviewed to reflect
5736 any changes. That file is copied to both the branch/ and current/
5737 snapshot directories.
5738
5739
5740 @subheading Update the NEWS and README files
5741
5742 The @file{NEWS} file needs to be updated so that on the branch it refers
5743 to @emph{changes in the current release} while on the trunk it also
5744 refers to @emph{changes since the current release}.
5745
5746 The @file{README} file needs to be updated so that it refers to the
5747 current release.
5748
5749 @subheading Post the branch info
5750
5751 Send an announcement to the mailing lists:
5752
5753 @itemize @bullet
5754 @item
5755 @email{gdb-announce@@sources.redhat.com, GDB Announcement mailing list}
5756 @item
5757 @email{gdb@@sources.redhat.com, GDB Discsussion mailing list} and
5758 @email{gdb-testers@@sources.redhat.com, GDB Discsussion mailing list}
5759 @end itemize
5760
5761 @emph{Pragmatics: The branch creation is sent to the announce list to
5762 ensure that people people not subscribed to the higher volume discussion
5763 list are alerted.}
5764
5765 The announcement should include:
5766
5767 @itemize @bullet
5768 @item
5769 the branch tag
5770 @item
5771 how to check out the branch using CVS
5772 @item
5773 the date/number of weeks until the release
5774 @item
5775 the branch commit policy
5776 still holds.
5777 @end itemize
5778
5779 @section Stabilize the branch
5780
5781 Something goes here.
5782
5783 @section Create a Release
5784
5785 The process of creating and then making available a release is broken
5786 down into a number of stages. The first part addresses the technical
5787 process of creating a releasable tar ball. The later stages address the
5788 process of releasing that tar ball.
5789
5790 When making a release candidate just the first section is needed.
5791
5792 @subsection Create a release candidate
5793
5794 The objective at this stage is to create a set of tar balls that can be
5795 made available as a formal release (or as a less formal release
5796 candidate).
5797
5798 @subsubheading Freeze the branch
5799
5800 Send out an e-mail notifying everyone that the branch is frozen to
5801 @email{gdb-patches@@sources.redhat.com}.
5802
5803 @subsubheading Establish a few defaults.
5804
5805 @smallexample
5806 $ b=gdb_5_2-branch
5807 $ v=5.2
5808 $ t=/sourceware/snapshot-tmp/gdbadmin-tmp
5809 $ echo $t/$b/$v
5810 /sourceware/snapshot-tmp/gdbadmin-tmp/gdb_5_2-branch/5.2
5811 $ mkdir -p $t/$b/$v
5812 $ cd $t/$b/$v
5813 $ pwd
5814 /sourceware/snapshot-tmp/gdbadmin-tmp/gdb_5_2-branch/5.2
5815 $ which autoconf
5816 /home/gdbadmin/bin/autoconf
5817 $
5818 @end smallexample
5819
5820 @noindent
5821 Notes:
5822
5823 @itemize @bullet
5824 @item
5825 Check the @code{autoconf} version carefully. You want to be using the
5826 version taken from the @file{binutils} snapshot directory, which can be
5827 found at @uref{ftp://sources.redhat.com/pub/binutils/}. It is very
5828 unlikely that a system installed version of @code{autoconf} (e.g.,
5829 @file{/usr/bin/autoconf}) is correct.
5830 @end itemize
5831
5832 @subsubheading Check out the relevant modules:
5833
5834 @smallexample
5835 $ for m in gdb insight dejagnu
5836 do
5837 ( mkdir -p $m && cd $m && cvs -q -f -d /cvs/src co -P -r $b $m )
5838 done
5839 $
5840 @end smallexample
5841
5842 @noindent
5843 Note:
5844
5845 @itemize @bullet
5846 @item
5847 The reading of @file{.cvsrc} is disabled (@file{-f}) so that there isn't
5848 any confusion between what is written here and what your local
5849 @code{cvs} really does.
5850 @end itemize
5851
5852 @subsubheading Update relevant files.
5853
5854 @table @file
5855
5856 @item gdb/NEWS
5857
5858 Major releases get their comments added as part of the mainline. Minor
5859 releases should probably mention any significant bugs that were fixed.
5860
5861 Don't forget to include the @file{ChangeLog} entry.
5862
5863 @smallexample
5864 $ emacs gdb/src/gdb/NEWS
5865 ...
5866 c-x 4 a
5867 ...
5868 c-x c-s c-x c-c
5869 $ cp gdb/src/gdb/NEWS insight/src/gdb/NEWS
5870 $ cp gdb/src/gdb/ChangeLog insight/src/gdb/ChangeLog
5871 @end smallexample
5872
5873 @item gdb/README
5874
5875 You'll need to update:
5876
5877 @itemize @bullet
5878 @item
5879 the version
5880 @item
5881 the update date
5882 @item
5883 who did it
5884 @end itemize
5885
5886 @smallexample
5887 $ emacs gdb/src/gdb/README
5888 ...
5889 c-x 4 a
5890 ...
5891 c-x c-s c-x c-c
5892 $ cp gdb/src/gdb/README insight/src/gdb/README
5893 $ cp gdb/src/gdb/ChangeLog insight/src/gdb/ChangeLog
5894 @end smallexample
5895
5896 @emph{Maintainer note: Hopefully the @file{README} file was reviewed
5897 before the initial branch was cut so just a simple substitute is needed
5898 to get it updated.}
5899
5900 @emph{Maintainer note: Other projects generate @file{README} and
5901 @file{INSTALL} from the core documentation. This might be worth
5902 pursuing.}
5903
5904 @item gdb/version.in
5905
5906 @smallexample
5907 $ echo $v > gdb/src/gdb/version.in
5908 $ cat gdb/src/gdb/version.in
5909 5.2
5910 $ emacs gdb/src/gdb/version.in
5911 ...
5912 c-x 4 a
5913 ... Bump to version ...
5914 c-x c-s c-x c-c
5915 $ cp gdb/src/gdb/version.in insight/src/gdb/version.in
5916 $ cp gdb/src/gdb/ChangeLog insight/src/gdb/ChangeLog
5917 @end smallexample
5918
5919 @item dejagnu/src/dejagnu/configure.in
5920
5921 Dejagnu is more complicated. The version number is a parameter to
5922 @code{AM_INIT_AUTOMAKE}. Tweak it to read something like gdb-5.1.91.
5923
5924 Don't forget to re-generate @file{configure}.
5925
5926 Don't forget to include a @file{ChangeLog} entry.
5927
5928 @smallexample
5929 $ emacs dejagnu/src/dejagnu/configure.in
5930 ...
5931 c-x 4 a
5932 ...
5933 c-x c-s c-x c-c
5934 $ ( cd dejagnu/src/dejagnu && autoconf )
5935 @end smallexample
5936
5937 @end table
5938
5939 @subsubheading Do the dirty work
5940
5941 This is identical to the process used to create the daily snapshot.
5942
5943 @smallexample
5944 $ for m in gdb insight
5945 do
5946 ( cd $m/src && gmake -f src-release $m.tar )
5947 done
5948 $ ( m=dejagnu; cd $m/src && gmake -f src-release $m.tar.bz2 )
5949 @end smallexample
5950
5951 If the top level source directory does not have @file{src-release}
5952 (@value{GDBN} version 5.3.1 or earlier), try these commands instead:
5953
5954 @smallexample
5955 $ for m in gdb insight
5956 do
5957 ( cd $m/src && gmake -f Makefile.in $m.tar )
5958 done
5959 $ ( m=dejagnu; cd $m/src && gmake -f Makefile.in $m.tar.bz2 )
5960 @end smallexample
5961
5962 @subsubheading Check the source files
5963
5964 You're looking for files that have mysteriously disappeared.
5965 @kbd{distclean} has the habit of deleting files it shouldn't. Watch out
5966 for the @file{version.in} update @kbd{cronjob}.
5967
5968 @smallexample
5969 $ ( cd gdb/src && cvs -f -q -n update )
5970 M djunpack.bat
5971 ? gdb-5.1.91.tar
5972 ? proto-toplev
5973 @dots{} lots of generated files @dots{}
5974 M gdb/ChangeLog
5975 M gdb/NEWS
5976 M gdb/README
5977 M gdb/version.in
5978 @dots{} lots of generated files @dots{}
5979 $
5980 @end smallexample
5981
5982 @noindent
5983 @emph{Don't worry about the @file{gdb.info-??} or
5984 @file{gdb/p-exp.tab.c}. They were generated (and yes @file{gdb.info-1}
5985 was also generated only something strange with CVS means that they
5986 didn't get supressed). Fixing it would be nice though.}
5987
5988 @subsubheading Create compressed versions of the release
5989
5990 @smallexample
5991 $ cp */src/*.tar .
5992 $ cp */src/*.bz2 .
5993 $ ls -F
5994 dejagnu/ dejagnu-gdb-5.2.tar.bz2 gdb/ gdb-5.2.tar insight/ insight-5.2.tar
5995 $ for m in gdb insight
5996 do
5997 bzip2 -v -9 -c $m-$v.tar > $m-$v.tar.bz2
5998 gzip -v -9 -c $m-$v.tar > $m-$v.tar.gz
5999 done
6000 $
6001 @end smallexample
6002
6003 @noindent
6004 Note:
6005
6006 @itemize @bullet
6007 @item
6008 A pipe such as @kbd{bunzip2 < xxx.bz2 | gzip -9 > xxx.gz} is not since,
6009 in that mode, @code{gzip} does not know the name of the file and, hence,
6010 can not include it in the compressed file. This is also why the release
6011 process runs @code{tar} and @code{bzip2} as separate passes.
6012 @end itemize
6013
6014 @subsection Sanity check the tar ball
6015
6016 Pick a popular machine (Solaris/PPC?) and try the build on that.
6017
6018 @smallexample
6019 $ bunzip2 < gdb-5.2.tar.bz2 | tar xpf -
6020 $ cd gdb-5.2
6021 $ ./configure
6022 $ make
6023 @dots{}
6024 $ ./gdb/gdb ./gdb/gdb
6025 GNU gdb 5.2
6026 @dots{}
6027 (gdb) b main
6028 Breakpoint 1 at 0x80732bc: file main.c, line 734.
6029 (gdb) run
6030 Starting program: /tmp/gdb-5.2/gdb/gdb
6031
6032 Breakpoint 1, main (argc=1, argv=0xbffff8b4) at main.c:734
6033 734 catch_errors (captured_main, &args, "", RETURN_MASK_ALL);
6034 (gdb) print args
6035 $1 = @{argc = 136426532, argv = 0x821b7f0@}
6036 (gdb)
6037 @end smallexample
6038
6039 @subsection Make a release candidate available
6040
6041 If this is a release candidate then the only remaining steps are:
6042
6043 @enumerate
6044 @item
6045 Commit @file{version.in} and @file{ChangeLog}
6046 @item
6047 Tweak @file{version.in} (and @file{ChangeLog} to read
6048 @var{L}.@var{M}.@var{N}-0000-00-00-cvs so that the version update
6049 process can restart.
6050 @item
6051 Make the release candidate available in
6052 @uref{ftp://sources.redhat.com/pub/gdb/snapshots/branch}
6053 @item
6054 Notify the relevant mailing lists ( @email{gdb@@sources.redhat.com} and
6055 @email{gdb-testers@@sources.redhat.com} that the candidate is available.
6056 @end enumerate
6057
6058 @subsection Make a formal release available
6059
6060 (And you thought all that was required was to post an e-mail.)
6061
6062 @subsubheading Install on sware
6063
6064 Copy the new files to both the release and the old release directory:
6065
6066 @smallexample
6067 $ cp *.bz2 *.gz ~ftp/pub/gdb/old-releases/
6068 $ cp *.bz2 *.gz ~ftp/pub/gdb/releases
6069 @end smallexample
6070
6071 @noindent
6072 Clean up the releases directory so that only the most recent releases
6073 are available (e.g. keep 5.2 and 5.2.1 but remove 5.1):
6074
6075 @smallexample
6076 $ cd ~ftp/pub/gdb/releases
6077 $ rm @dots{}
6078 @end smallexample
6079
6080 @noindent
6081 Update the file @file{README} and @file{.message} in the releases
6082 directory:
6083
6084 @smallexample
6085 $ vi README
6086 @dots{}
6087 $ rm -f .message
6088 $ ln README .message
6089 @end smallexample
6090
6091 @subsubheading Update the web pages.
6092
6093 @table @file
6094
6095 @item htdocs/download/ANNOUNCEMENT
6096 This file, which is posted as the official announcement, includes:
6097 @itemize @bullet
6098 @item
6099 General announcement
6100 @item
6101 News. If making an @var{M}.@var{N}.1 release, retain the news from
6102 earlier @var{M}.@var{N} release.
6103 @item
6104 Errata
6105 @end itemize
6106
6107 @item htdocs/index.html
6108 @itemx htdocs/news/index.html
6109 @itemx htdocs/download/index.html
6110 These files include:
6111 @itemize @bullet
6112 @item
6113 announcement of the most recent release
6114 @item
6115 news entry (remember to update both the top level and the news directory).
6116 @end itemize
6117 These pages also need to be regenerate using @code{index.sh}.
6118
6119 @item download/onlinedocs/
6120 You need to find the magic command that is used to generate the online
6121 docs from the @file{.tar.bz2}. The best way is to look in the output
6122 from one of the nightly @code{cron} jobs and then just edit accordingly.
6123 Something like:
6124
6125 @smallexample
6126 $ ~/ss/update-web-docs \
6127 ~ftp/pub/gdb/releases/gdb-5.2.tar.bz2 \
6128 $PWD/www \
6129 /www/sourceware/htdocs/gdb/download/onlinedocs \
6130 gdb
6131 @end smallexample
6132
6133 @item download/ari/
6134 Just like the online documentation. Something like:
6135
6136 @smallexample
6137 $ /bin/sh ~/ss/update-web-ari \
6138 ~ftp/pub/gdb/releases/gdb-5.2.tar.bz2 \
6139 $PWD/www \
6140 /www/sourceware/htdocs/gdb/download/ari \
6141 gdb
6142 @end smallexample
6143
6144 @end table
6145
6146 @subsubheading Shadow the pages onto gnu
6147
6148 Something goes here.
6149
6150
6151 @subsubheading Install the @value{GDBN} tar ball on GNU
6152
6153 At the time of writing, the GNU machine was @kbd{gnudist.gnu.org} in
6154 @file{~ftp/gnu/gdb}.
6155
6156 @subsubheading Make the @file{ANNOUNCEMENT}
6157
6158 Post the @file{ANNOUNCEMENT} file you created above to:
6159
6160 @itemize @bullet
6161 @item
6162 @email{gdb-announce@@sources.redhat.com, GDB Announcement mailing list}
6163 @item
6164 @email{info-gnu@@gnu.org, General GNU Announcement list} (but delay it a
6165 day or so to let things get out)
6166 @item
6167 @email{bug-gdb@@gnu.org, GDB Bug Report mailing list}
6168 @end itemize
6169
6170 @subsection Cleanup
6171
6172 The release is out but you're still not finished.
6173
6174 @subsubheading Commit outstanding changes
6175
6176 In particular you'll need to commit any changes to:
6177
6178 @itemize @bullet
6179 @item
6180 @file{gdb/ChangeLog}
6181 @item
6182 @file{gdb/version.in}
6183 @item
6184 @file{gdb/NEWS}
6185 @item
6186 @file{gdb/README}
6187 @end itemize
6188
6189 @subsubheading Tag the release
6190
6191 Something like:
6192
6193 @smallexample
6194 $ d=`date -u +%Y-%m-%d`
6195 $ echo $d
6196 2002-01-24
6197 $ ( cd insight/src/gdb && cvs -f -q update )
6198 $ ( cd insight/src && cvs -f -q tag gdb_5_2-$d-release )
6199 @end smallexample
6200
6201 Insight is used since that contains more of the release than
6202 @value{GDBN} (@code{dejagnu} doesn't get tagged but I think we can live
6203 with that).
6204
6205 @subsubheading Mention the release on the trunk
6206
6207 Just put something in the @file{ChangeLog} so that the trunk also
6208 indicates when the release was made.
6209
6210 @subsubheading Restart @file{gdb/version.in}
6211
6212 If @file{gdb/version.in} does not contain an ISO date such as
6213 @kbd{2002-01-24} then the daily @code{cronjob} won't update it. Having
6214 committed all the release changes it can be set to
6215 @file{5.2.0_0000-00-00-cvs} which will restart things (yes the @kbd{_}
6216 is important - it affects the snapshot process).
6217
6218 Don't forget the @file{ChangeLog}.
6219
6220 @subsubheading Merge into trunk
6221
6222 The files committed to the branch may also need changes merged into the
6223 trunk.
6224
6225 @subsubheading Revise the release schedule
6226
6227 Post a revised release schedule to @email{gdb@@sources.redhat.com, GDB
6228 Discussion List} with an updated announcement. The schedule can be
6229 generated by running:
6230
6231 @smallexample
6232 $ ~/ss/schedule `date +%s` schedule
6233 @end smallexample
6234
6235 @noindent
6236 The first parameter is approximate date/time in seconds (from the epoch)
6237 of the most recent release.
6238
6239 Also update the schedule @code{cronjob}.
6240
6241 @section Post release
6242
6243 Remove any @code{OBSOLETE} code.
6244
6245 @node Testsuite
6246
6247 @chapter Testsuite
6248 @cindex test suite
6249
6250 The testsuite is an important component of the @value{GDBN} package.
6251 While it is always worthwhile to encourage user testing, in practice
6252 this is rarely sufficient; users typically use only a small subset of
6253 the available commands, and it has proven all too common for a change
6254 to cause a significant regression that went unnoticed for some time.
6255
6256 The @value{GDBN} testsuite uses the DejaGNU testing framework.
6257 DejaGNU is built using @code{Tcl} and @code{expect}. The tests
6258 themselves are calls to various @code{Tcl} procs; the framework runs all the
6259 procs and summarizes the passes and fails.
6260
6261 @section Using the Testsuite
6262
6263 @cindex running the test suite
6264 To run the testsuite, simply go to the @value{GDBN} object directory (or to the
6265 testsuite's objdir) and type @code{make check}. This just sets up some
6266 environment variables and invokes DejaGNU's @code{runtest} script. While
6267 the testsuite is running, you'll get mentions of which test file is in use,
6268 and a mention of any unexpected passes or fails. When the testsuite is
6269 finished, you'll get a summary that looks like this:
6270
6271 @smallexample
6272 === gdb Summary ===
6273
6274 # of expected passes 6016
6275 # of unexpected failures 58
6276 # of unexpected successes 5
6277 # of expected failures 183
6278 # of unresolved testcases 3
6279 # of untested testcases 5
6280 @end smallexample
6281
6282 The ideal test run consists of expected passes only; however, reality
6283 conspires to keep us from this ideal. Unexpected failures indicate
6284 real problems, whether in @value{GDBN} or in the testsuite. Expected
6285 failures are still failures, but ones which have been decided are too
6286 hard to deal with at the time; for instance, a test case might work
6287 everywhere except on AIX, and there is no prospect of the AIX case
6288 being fixed in the near future. Expected failures should not be added
6289 lightly, since you may be masking serious bugs in @value{GDBN}.
6290 Unexpected successes are expected fails that are passing for some
6291 reason, while unresolved and untested cases often indicate some minor
6292 catastrophe, such as the compiler being unable to deal with a test
6293 program.
6294
6295 When making any significant change to @value{GDBN}, you should run the
6296 testsuite before and after the change, to confirm that there are no
6297 regressions. Note that truly complete testing would require that you
6298 run the testsuite with all supported configurations and a variety of
6299 compilers; however this is more than really necessary. In many cases
6300 testing with a single configuration is sufficient. Other useful
6301 options are to test one big-endian (Sparc) and one little-endian (x86)
6302 host, a cross config with a builtin simulator (powerpc-eabi,
6303 mips-elf), or a 64-bit host (Alpha).
6304
6305 If you add new functionality to @value{GDBN}, please consider adding
6306 tests for it as well; this way future @value{GDBN} hackers can detect
6307 and fix their changes that break the functionality you added.
6308 Similarly, if you fix a bug that was not previously reported as a test
6309 failure, please add a test case for it. Some cases are extremely
6310 difficult to test, such as code that handles host OS failures or bugs
6311 in particular versions of compilers, and it's OK not to try to write
6312 tests for all of those.
6313
6314 @section Testsuite Organization
6315
6316 @cindex test suite organization
6317 The testsuite is entirely contained in @file{gdb/testsuite}. While the
6318 testsuite includes some makefiles and configury, these are very minimal,
6319 and used for little besides cleaning up, since the tests themselves
6320 handle the compilation of the programs that @value{GDBN} will run. The file
6321 @file{testsuite/lib/gdb.exp} contains common utility procs useful for
6322 all @value{GDBN} tests, while the directory @file{testsuite/config} contains
6323 configuration-specific files, typically used for special-purpose
6324 definitions of procs like @code{gdb_load} and @code{gdb_start}.
6325
6326 The tests themselves are to be found in @file{testsuite/gdb.*} and
6327 subdirectories of those. The names of the test files must always end
6328 with @file{.exp}. DejaGNU collects the test files by wildcarding
6329 in the test directories, so both subdirectories and individual files
6330 get chosen and run in alphabetical order.
6331
6332 The following table lists the main types of subdirectories and what they
6333 are for. Since DejaGNU finds test files no matter where they are
6334 located, and since each test file sets up its own compilation and
6335 execution environment, this organization is simply for convenience and
6336 intelligibility.
6337
6338 @table @file
6339 @item gdb.base
6340 This is the base testsuite. The tests in it should apply to all
6341 configurations of @value{GDBN} (but generic native-only tests may live here).
6342 The test programs should be in the subset of C that is valid K&R,
6343 ANSI/ISO, and C++ (@code{#ifdef}s are allowed if necessary, for instance
6344 for prototypes).
6345
6346 @item gdb.@var{lang}
6347 Language-specific tests for any language @var{lang} besides C. Examples are
6348 @file{gdb.c++} and @file{gdb.java}.
6349
6350 @item gdb.@var{platform}
6351 Non-portable tests. The tests are specific to a specific configuration
6352 (host or target), such as HP-UX or eCos. Example is @file{gdb.hp}, for
6353 HP-UX.
6354
6355 @item gdb.@var{compiler}
6356 Tests specific to a particular compiler. As of this writing (June
6357 1999), there aren't currently any groups of tests in this category that
6358 couldn't just as sensibly be made platform-specific, but one could
6359 imagine a @file{gdb.gcc}, for tests of @value{GDBN}'s handling of GCC
6360 extensions.
6361
6362 @item gdb.@var{subsystem}
6363 Tests that exercise a specific @value{GDBN} subsystem in more depth. For
6364 instance, @file{gdb.disasm} exercises various disassemblers, while
6365 @file{gdb.stabs} tests pathways through the stabs symbol reader.
6366 @end table
6367
6368 @section Writing Tests
6369 @cindex writing tests
6370
6371 In many areas, the @value{GDBN} tests are already quite comprehensive; you
6372 should be able to copy existing tests to handle new cases.
6373
6374 You should try to use @code{gdb_test} whenever possible, since it
6375 includes cases to handle all the unexpected errors that might happen.
6376 However, it doesn't cost anything to add new test procedures; for
6377 instance, @file{gdb.base/exprs.exp} defines a @code{test_expr} that
6378 calls @code{gdb_test} multiple times.
6379
6380 Only use @code{send_gdb} and @code{gdb_expect} when absolutely
6381 necessary, such as when @value{GDBN} has several valid responses to a command.
6382
6383 The source language programs do @emph{not} need to be in a consistent
6384 style. Since @value{GDBN} is used to debug programs written in many different
6385 styles, it's worth having a mix of styles in the testsuite; for
6386 instance, some @value{GDBN} bugs involving the display of source lines would
6387 never manifest themselves if the programs used GNU coding style
6388 uniformly.
6389
6390 @node Hints
6391
6392 @chapter Hints
6393
6394 Check the @file{README} file, it often has useful information that does not
6395 appear anywhere else in the directory.
6396
6397 @menu
6398 * Getting Started:: Getting started working on @value{GDBN}
6399 * Debugging GDB:: Debugging @value{GDBN} with itself
6400 @end menu
6401
6402 @node Getting Started,,, Hints
6403
6404 @section Getting Started
6405
6406 @value{GDBN} is a large and complicated program, and if you first starting to
6407 work on it, it can be hard to know where to start. Fortunately, if you
6408 know how to go about it, there are ways to figure out what is going on.
6409
6410 This manual, the @value{GDBN} Internals manual, has information which applies
6411 generally to many parts of @value{GDBN}.
6412
6413 Information about particular functions or data structures are located in
6414 comments with those functions or data structures. If you run across a
6415 function or a global variable which does not have a comment correctly
6416 explaining what is does, this can be thought of as a bug in @value{GDBN}; feel
6417 free to submit a bug report, with a suggested comment if you can figure
6418 out what the comment should say. If you find a comment which is
6419 actually wrong, be especially sure to report that.
6420
6421 Comments explaining the function of macros defined in host, target, or
6422 native dependent files can be in several places. Sometimes they are
6423 repeated every place the macro is defined. Sometimes they are where the
6424 macro is used. Sometimes there is a header file which supplies a
6425 default definition of the macro, and the comment is there. This manual
6426 also documents all the available macros.
6427 @c (@pxref{Host Conditionals}, @pxref{Target
6428 @c Conditionals}, @pxref{Native Conditionals}, and @pxref{Obsolete
6429 @c Conditionals})
6430
6431 Start with the header files. Once you have some idea of how
6432 @value{GDBN}'s internal symbol tables are stored (see @file{symtab.h},
6433 @file{gdbtypes.h}), you will find it much easier to understand the
6434 code which uses and creates those symbol tables.
6435
6436 You may wish to process the information you are getting somehow, to
6437 enhance your understanding of it. Summarize it, translate it to another
6438 language, add some (perhaps trivial or non-useful) feature to @value{GDBN}, use
6439 the code to predict what a test case would do and write the test case
6440 and verify your prediction, etc. If you are reading code and your eyes
6441 are starting to glaze over, this is a sign you need to use a more active
6442 approach.
6443
6444 Once you have a part of @value{GDBN} to start with, you can find more
6445 specifically the part you are looking for by stepping through each
6446 function with the @code{next} command. Do not use @code{step} or you
6447 will quickly get distracted; when the function you are stepping through
6448 calls another function try only to get a big-picture understanding
6449 (perhaps using the comment at the beginning of the function being
6450 called) of what it does. This way you can identify which of the
6451 functions being called by the function you are stepping through is the
6452 one which you are interested in. You may need to examine the data
6453 structures generated at each stage, with reference to the comments in
6454 the header files explaining what the data structures are supposed to
6455 look like.
6456
6457 Of course, this same technique can be used if you are just reading the
6458 code, rather than actually stepping through it. The same general
6459 principle applies---when the code you are looking at calls something
6460 else, just try to understand generally what the code being called does,
6461 rather than worrying about all its details.
6462
6463 @cindex command implementation
6464 A good place to start when tracking down some particular area is with
6465 a command which invokes that feature. Suppose you want to know how
6466 single-stepping works. As a @value{GDBN} user, you know that the
6467 @code{step} command invokes single-stepping. The command is invoked
6468 via command tables (see @file{command.h}); by convention the function
6469 which actually performs the command is formed by taking the name of
6470 the command and adding @samp{_command}, or in the case of an
6471 @code{info} subcommand, @samp{_info}. For example, the @code{step}
6472 command invokes the @code{step_command} function and the @code{info
6473 display} command invokes @code{display_info}. When this convention is
6474 not followed, you might have to use @code{grep} or @kbd{M-x
6475 tags-search} in emacs, or run @value{GDBN} on itself and set a
6476 breakpoint in @code{execute_command}.
6477
6478 @cindex @code{bug-gdb} mailing list
6479 If all of the above fail, it may be appropriate to ask for information
6480 on @code{bug-gdb}. But @emph{never} post a generic question like ``I was
6481 wondering if anyone could give me some tips about understanding
6482 @value{GDBN}''---if we had some magic secret we would put it in this manual.
6483 Suggestions for improving the manual are always welcome, of course.
6484
6485 @node Debugging GDB,,,Hints
6486
6487 @section Debugging @value{GDBN} with itself
6488 @cindex debugging @value{GDBN}
6489
6490 If @value{GDBN} is limping on your machine, this is the preferred way to get it
6491 fully functional. Be warned that in some ancient Unix systems, like
6492 Ultrix 4.2, a program can't be running in one process while it is being
6493 debugged in another. Rather than typing the command @kbd{@w{./gdb
6494 ./gdb}}, which works on Suns and such, you can copy @file{gdb} to
6495 @file{gdb2} and then type @kbd{@w{./gdb ./gdb2}}.
6496
6497 When you run @value{GDBN} in the @value{GDBN} source directory, it will read a
6498 @file{.gdbinit} file that sets up some simple things to make debugging
6499 gdb easier. The @code{info} command, when executed without a subcommand
6500 in a @value{GDBN} being debugged by gdb, will pop you back up to the top level
6501 gdb. See @file{.gdbinit} for details.
6502
6503 If you use emacs, you will probably want to do a @code{make TAGS} after
6504 you configure your distribution; this will put the machine dependent
6505 routines for your local machine where they will be accessed first by
6506 @kbd{M-.}
6507
6508 Also, make sure that you've either compiled @value{GDBN} with your local cc, or
6509 have run @code{fixincludes} if you are compiling with gcc.
6510
6511 @section Submitting Patches
6512
6513 @cindex submitting patches
6514 Thanks for thinking of offering your changes back to the community of
6515 @value{GDBN} users. In general we like to get well designed enhancements.
6516 Thanks also for checking in advance about the best way to transfer the
6517 changes.
6518
6519 The @value{GDBN} maintainers will only install ``cleanly designed'' patches.
6520 This manual summarizes what we believe to be clean design for @value{GDBN}.
6521
6522 If the maintainers don't have time to put the patch in when it arrives,
6523 or if there is any question about a patch, it goes into a large queue
6524 with everyone else's patches and bug reports.
6525
6526 @cindex legal papers for code contributions
6527 The legal issue is that to incorporate substantial changes requires a
6528 copyright assignment from you and/or your employer, granting ownership
6529 of the changes to the Free Software Foundation. You can get the
6530 standard documents for doing this by sending mail to @code{gnu@@gnu.org}
6531 and asking for it. We recommend that people write in "All programs
6532 owned by the Free Software Foundation" as "NAME OF PROGRAM", so that
6533 changes in many programs (not just @value{GDBN}, but GAS, Emacs, GCC,
6534 etc) can be
6535 contributed with only one piece of legalese pushed through the
6536 bureaucracy and filed with the FSF. We can't start merging changes until
6537 this paperwork is received by the FSF (their rules, which we follow
6538 since we maintain it for them).
6539
6540 Technically, the easiest way to receive changes is to receive each
6541 feature as a small context diff or unidiff, suitable for @code{patch}.
6542 Each message sent to me should include the changes to C code and
6543 header files for a single feature, plus @file{ChangeLog} entries for
6544 each directory where files were modified, and diffs for any changes
6545 needed to the manuals (@file{gdb/doc/gdb.texinfo} or
6546 @file{gdb/doc/gdbint.texinfo}). If there are a lot of changes for a
6547 single feature, they can be split down into multiple messages.
6548
6549 In this way, if we read and like the feature, we can add it to the
6550 sources with a single patch command, do some testing, and check it in.
6551 If you leave out the @file{ChangeLog}, we have to write one. If you leave
6552 out the doc, we have to puzzle out what needs documenting. Etc., etc.
6553
6554 The reason to send each change in a separate message is that we will not
6555 install some of the changes. They'll be returned to you with questions
6556 or comments. If we're doing our job correctly, the message back to you
6557 will say what you have to fix in order to make the change acceptable.
6558 The reason to have separate messages for separate features is so that
6559 the acceptable changes can be installed while one or more changes are
6560 being reworked. If multiple features are sent in a single message, we
6561 tend to not put in the effort to sort out the acceptable changes from
6562 the unacceptable, so none of the features get installed until all are
6563 acceptable.
6564
6565 If this sounds painful or authoritarian, well, it is. But we get a lot
6566 of bug reports and a lot of patches, and many of them don't get
6567 installed because we don't have the time to finish the job that the bug
6568 reporter or the contributor could have done. Patches that arrive
6569 complete, working, and well designed, tend to get installed on the day
6570 they arrive. The others go into a queue and get installed as time
6571 permits, which, since the maintainers have many demands to meet, may not
6572 be for quite some time.
6573
6574 Please send patches directly to
6575 @email{gdb-patches@@sources.redhat.com, the @value{GDBN} maintainers}.
6576
6577 @section Obsolete Conditionals
6578 @cindex obsolete code
6579
6580 Fragments of old code in @value{GDBN} sometimes reference or set the following
6581 configuration macros. They should not be used by new code, and old uses
6582 should be removed as those parts of the debugger are otherwise touched.
6583
6584 @table @code
6585 @item STACK_END_ADDR
6586 This macro used to define where the end of the stack appeared, for use
6587 in interpreting core file formats that don't record this address in the
6588 core file itself. This information is now configured in BFD, and @value{GDBN}
6589 gets the info portably from there. The values in @value{GDBN}'s configuration
6590 files should be moved into BFD configuration files (if needed there),
6591 and deleted from all of @value{GDBN}'s config files.
6592
6593 Any @file{@var{foo}-xdep.c} file that references STACK_END_ADDR
6594 is so old that it has never been converted to use BFD. Now that's old!
6595
6596 @end table
6597
6598 @include fdl.texi
6599
6600 @node Index
6601 @unnumbered Index
6602
6603 @printindex cp
6604
6605 @bye