Move compiler.h and imports.h/c from src/mesa/main into src/util
[mesa.git] / src / compiler / glsl / glsl_to_nir.cpp
1 /*
2 * Copyright © 2014 Intel Corporation
3 *
4 * Permission is hereby granted, free of charge, to any person obtaining a
5 * copy of this software and associated documentation files (the "Software"),
6 * to deal in the Software without restriction, including without limitation
7 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
8 * and/or sell copies of the Software, and to permit persons to whom the
9 * Software is furnished to do so, subject to the following conditions:
10 *
11 * The above copyright notice and this permission notice (including the next
12 * paragraph) shall be included in all copies or substantial portions of the
13 * Software.
14 *
15 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
16 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
17 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
18 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
19 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
20 * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS
21 * IN THE SOFTWARE.
22 *
23 * Authors:
24 * Connor Abbott (cwabbott0@gmail.com)
25 *
26 */
27
28 #include "float64_glsl.h"
29 #include "glsl_to_nir.h"
30 #include "ir_visitor.h"
31 #include "ir_hierarchical_visitor.h"
32 #include "ir.h"
33 #include "ir_optimization.h"
34 #include "program.h"
35 #include "compiler/nir/nir_control_flow.h"
36 #include "compiler/nir/nir_builder.h"
37 #include "compiler/nir/nir_builtin_builder.h"
38 #include "compiler/nir/nir_deref.h"
39 #include "main/errors.h"
40 #include "util/imports.h"
41 #include "main/mtypes.h"
42 #include "main/shaderobj.h"
43 #include "util/u_math.h"
44
45 /*
46 * pass to lower GLSL IR to NIR
47 *
48 * This will lower variable dereferences to loads/stores of corresponding
49 * variables in NIR - the variables will be converted to registers in a later
50 * pass.
51 */
52
53 namespace {
54
55 class nir_visitor : public ir_visitor
56 {
57 public:
58 nir_visitor(gl_context *ctx, nir_shader *shader);
59 ~nir_visitor();
60
61 virtual void visit(ir_variable *);
62 virtual void visit(ir_function *);
63 virtual void visit(ir_function_signature *);
64 virtual void visit(ir_loop *);
65 virtual void visit(ir_if *);
66 virtual void visit(ir_discard *);
67 virtual void visit(ir_demote *);
68 virtual void visit(ir_loop_jump *);
69 virtual void visit(ir_return *);
70 virtual void visit(ir_call *);
71 virtual void visit(ir_assignment *);
72 virtual void visit(ir_emit_vertex *);
73 virtual void visit(ir_end_primitive *);
74 virtual void visit(ir_expression *);
75 virtual void visit(ir_swizzle *);
76 virtual void visit(ir_texture *);
77 virtual void visit(ir_constant *);
78 virtual void visit(ir_dereference_variable *);
79 virtual void visit(ir_dereference_record *);
80 virtual void visit(ir_dereference_array *);
81 virtual void visit(ir_barrier *);
82
83 void create_function(ir_function_signature *ir);
84
85 private:
86 void add_instr(nir_instr *instr, unsigned num_components, unsigned bit_size);
87 nir_ssa_def *evaluate_rvalue(ir_rvalue *ir);
88
89 nir_alu_instr *emit(nir_op op, unsigned dest_size, nir_ssa_def **srcs);
90 nir_alu_instr *emit(nir_op op, unsigned dest_size, nir_ssa_def *src1);
91 nir_alu_instr *emit(nir_op op, unsigned dest_size, nir_ssa_def *src1,
92 nir_ssa_def *src2);
93 nir_alu_instr *emit(nir_op op, unsigned dest_size, nir_ssa_def *src1,
94 nir_ssa_def *src2, nir_ssa_def *src3);
95
96 bool supports_std430;
97
98 nir_shader *shader;
99 nir_function_impl *impl;
100 nir_builder b;
101 nir_ssa_def *result; /* result of the expression tree last visited */
102
103 nir_deref_instr *evaluate_deref(ir_instruction *ir);
104
105 nir_constant *constant_copy(ir_constant *ir, void *mem_ctx);
106
107 /* most recent deref instruction created */
108 nir_deref_instr *deref;
109
110 /* whether the IR we're operating on is per-function or global */
111 bool is_global;
112
113 ir_function_signature *sig;
114
115 /* map of ir_variable -> nir_variable */
116 struct hash_table *var_table;
117
118 /* map of ir_function_signature -> nir_function_overload */
119 struct hash_table *overload_table;
120 };
121
122 /*
123 * This visitor runs before the main visitor, calling create_function() for
124 * each function so that the main visitor can resolve forward references in
125 * calls.
126 */
127
128 class nir_function_visitor : public ir_hierarchical_visitor
129 {
130 public:
131 nir_function_visitor(nir_visitor *v) : visitor(v)
132 {
133 }
134 virtual ir_visitor_status visit_enter(ir_function *);
135
136 private:
137 nir_visitor *visitor;
138 };
139
140 /* glsl_to_nir can only handle converting certain function paramaters
141 * to NIR. This visitor checks for parameters it can't currently handle.
142 */
143 class ir_function_param_visitor : public ir_hierarchical_visitor
144 {
145 public:
146 ir_function_param_visitor()
147 : unsupported(false)
148 {
149 }
150
151 virtual ir_visitor_status visit_enter(ir_function_signature *ir)
152 {
153
154 if (ir->is_intrinsic())
155 return visit_continue;
156
157 foreach_in_list(ir_variable, param, &ir->parameters) {
158 if (!param->type->is_vector() || !param->type->is_scalar()) {
159 unsupported = true;
160 return visit_stop;
161 }
162
163 if (param->data.mode == ir_var_function_inout) {
164 unsupported = true;
165 return visit_stop;
166 }
167 }
168
169 return visit_continue;
170 }
171
172 bool unsupported;
173 };
174
175 } /* end of anonymous namespace */
176
177
178 static bool
179 has_unsupported_function_param(exec_list *ir)
180 {
181 ir_function_param_visitor visitor;
182 visit_list_elements(&visitor, ir);
183 return visitor.unsupported;
184 }
185
186 nir_shader *
187 glsl_to_nir(struct gl_context *ctx,
188 const struct gl_shader_program *shader_prog,
189 gl_shader_stage stage,
190 const nir_shader_compiler_options *options)
191 {
192 struct gl_linked_shader *sh = shader_prog->_LinkedShaders[stage];
193
194 const struct gl_shader_compiler_options *gl_options =
195 &ctx->Const.ShaderCompilerOptions[stage];
196
197 /* glsl_to_nir can only handle converting certain function paramaters
198 * to NIR. If we find something we can't handle then we get the GLSL IR
199 * opts to remove it before we continue on.
200 *
201 * TODO: add missing glsl ir to nir support and remove this loop.
202 */
203 while (has_unsupported_function_param(sh->ir)) {
204 do_common_optimization(sh->ir, true, true, gl_options,
205 ctx->Const.NativeIntegers);
206 }
207
208 nir_shader *shader = nir_shader_create(NULL, stage, options,
209 &sh->Program->info);
210
211 nir_visitor v1(ctx, shader);
212 nir_function_visitor v2(&v1);
213 v2.run(sh->ir);
214 visit_exec_list(sh->ir, &v1);
215
216 nir_validate_shader(shader, "after glsl to nir, before function inline");
217
218 /* We have to lower away local constant initializers right before we
219 * inline functions. That way they get properly initialized at the top
220 * of the function and not at the top of its caller.
221 */
222 nir_lower_variable_initializers(shader, (nir_variable_mode)~0);
223 nir_lower_returns(shader);
224 nir_inline_functions(shader);
225 nir_opt_deref(shader);
226
227 nir_validate_shader(shader, "after function inlining and return lowering");
228
229 /* Now that we have inlined everything remove all of the functions except
230 * main().
231 */
232 foreach_list_typed_safe(nir_function, function, node, &(shader)->functions){
233 if (strcmp("main", function->name) != 0) {
234 exec_node_remove(&function->node);
235 }
236 }
237
238 shader->info.name = ralloc_asprintf(shader, "GLSL%d", shader_prog->Name);
239 if (shader_prog->Label)
240 shader->info.label = ralloc_strdup(shader, shader_prog->Label);
241
242 /* Check for transform feedback varyings specified via the API */
243 shader->info.has_transform_feedback_varyings =
244 shader_prog->TransformFeedback.NumVarying > 0;
245
246 /* Check for transform feedback varyings specified in the Shader */
247 if (shader_prog->last_vert_prog)
248 shader->info.has_transform_feedback_varyings |=
249 shader_prog->last_vert_prog->sh.LinkedTransformFeedback->NumVarying > 0;
250
251 if (shader->info.stage == MESA_SHADER_FRAGMENT) {
252 shader->info.fs.pixel_center_integer = sh->Program->info.fs.pixel_center_integer;
253 shader->info.fs.origin_upper_left = sh->Program->info.fs.origin_upper_left;
254 }
255
256 return shader;
257 }
258
259 nir_visitor::nir_visitor(gl_context *ctx, nir_shader *shader)
260 {
261 this->supports_std430 = ctx->Const.UseSTD430AsDefaultPacking;
262 this->shader = shader;
263 this->is_global = true;
264 this->var_table = _mesa_pointer_hash_table_create(NULL);
265 this->overload_table = _mesa_pointer_hash_table_create(NULL);
266 this->result = NULL;
267 this->impl = NULL;
268 this->deref = NULL;
269 this->sig = NULL;
270 memset(&this->b, 0, sizeof(this->b));
271 }
272
273 nir_visitor::~nir_visitor()
274 {
275 _mesa_hash_table_destroy(this->var_table, NULL);
276 _mesa_hash_table_destroy(this->overload_table, NULL);
277 }
278
279 nir_deref_instr *
280 nir_visitor::evaluate_deref(ir_instruction *ir)
281 {
282 ir->accept(this);
283 return this->deref;
284 }
285
286 nir_constant *
287 nir_visitor::constant_copy(ir_constant *ir, void *mem_ctx)
288 {
289 if (ir == NULL)
290 return NULL;
291
292 nir_constant *ret = rzalloc(mem_ctx, nir_constant);
293
294 const unsigned rows = ir->type->vector_elements;
295 const unsigned cols = ir->type->matrix_columns;
296 unsigned i;
297
298 ret->num_elements = 0;
299 switch (ir->type->base_type) {
300 case GLSL_TYPE_UINT:
301 /* Only float base types can be matrices. */
302 assert(cols == 1);
303
304 for (unsigned r = 0; r < rows; r++)
305 ret->values[r].u32 = ir->value.u[r];
306
307 break;
308
309 case GLSL_TYPE_INT:
310 /* Only float base types can be matrices. */
311 assert(cols == 1);
312
313 for (unsigned r = 0; r < rows; r++)
314 ret->values[r].i32 = ir->value.i[r];
315
316 break;
317
318 case GLSL_TYPE_FLOAT:
319 case GLSL_TYPE_FLOAT16:
320 case GLSL_TYPE_DOUBLE:
321 if (cols > 1) {
322 ret->elements = ralloc_array(mem_ctx, nir_constant *, cols);
323 ret->num_elements = cols;
324 for (unsigned c = 0; c < cols; c++) {
325 nir_constant *col_const = rzalloc(mem_ctx, nir_constant);
326 col_const->num_elements = 0;
327 switch (ir->type->base_type) {
328 case GLSL_TYPE_FLOAT:
329 for (unsigned r = 0; r < rows; r++)
330 col_const->values[r].f32 = ir->value.f[c * rows + r];
331 break;
332
333 case GLSL_TYPE_FLOAT16:
334 for (unsigned r = 0; r < rows; r++)
335 col_const->values[r].u16 = ir->value.f16[c * rows + r];
336 break;
337
338 case GLSL_TYPE_DOUBLE:
339 for (unsigned r = 0; r < rows; r++)
340 col_const->values[r].f64 = ir->value.d[c * rows + r];
341 break;
342
343 default:
344 unreachable("Cannot get here from the first level switch");
345 }
346 ret->elements[c] = col_const;
347 }
348 } else {
349 switch (ir->type->base_type) {
350 case GLSL_TYPE_FLOAT:
351 for (unsigned r = 0; r < rows; r++)
352 ret->values[r].f32 = ir->value.f[r];
353 break;
354
355 case GLSL_TYPE_FLOAT16:
356 for (unsigned r = 0; r < rows; r++)
357 ret->values[r].u16 = ir->value.f16[r];
358 break;
359
360 case GLSL_TYPE_DOUBLE:
361 for (unsigned r = 0; r < rows; r++)
362 ret->values[r].f64 = ir->value.d[r];
363 break;
364
365 default:
366 unreachable("Cannot get here from the first level switch");
367 }
368 }
369 break;
370
371 case GLSL_TYPE_UINT64:
372 /* Only float base types can be matrices. */
373 assert(cols == 1);
374
375 for (unsigned r = 0; r < rows; r++)
376 ret->values[r].u64 = ir->value.u64[r];
377 break;
378
379 case GLSL_TYPE_INT64:
380 /* Only float base types can be matrices. */
381 assert(cols == 1);
382
383 for (unsigned r = 0; r < rows; r++)
384 ret->values[r].i64 = ir->value.i64[r];
385 break;
386
387 case GLSL_TYPE_BOOL:
388 /* Only float base types can be matrices. */
389 assert(cols == 1);
390
391 for (unsigned r = 0; r < rows; r++)
392 ret->values[r].b = ir->value.b[r];
393
394 break;
395
396 case GLSL_TYPE_STRUCT:
397 case GLSL_TYPE_ARRAY:
398 ret->elements = ralloc_array(mem_ctx, nir_constant *,
399 ir->type->length);
400 ret->num_elements = ir->type->length;
401
402 for (i = 0; i < ir->type->length; i++)
403 ret->elements[i] = constant_copy(ir->const_elements[i], mem_ctx);
404 break;
405
406 default:
407 unreachable("not reached");
408 }
409
410 return ret;
411 }
412
413 static const glsl_type *
414 wrap_type_in_array(const glsl_type *elem_type, const glsl_type *array_type)
415 {
416 if (!array_type->is_array())
417 return elem_type;
418
419 elem_type = wrap_type_in_array(elem_type, array_type->fields.array);
420
421 return glsl_type::get_array_instance(elem_type, array_type->length);
422 }
423
424 static unsigned
425 get_nir_how_declared(unsigned how_declared)
426 {
427 if (how_declared == ir_var_hidden)
428 return nir_var_hidden;
429
430 return nir_var_declared_normally;
431 }
432
433 void
434 nir_visitor::visit(ir_variable *ir)
435 {
436 /* TODO: In future we should switch to using the NIR lowering pass but for
437 * now just ignore these variables as GLSL IR should have lowered them.
438 * Anything remaining are just dead vars that weren't cleaned up.
439 */
440 if (ir->data.mode == ir_var_shader_shared)
441 return;
442
443 /* FINISHME: inout parameters */
444 assert(ir->data.mode != ir_var_function_inout);
445
446 if (ir->data.mode == ir_var_function_out)
447 return;
448
449 nir_variable *var = rzalloc(shader, nir_variable);
450 var->type = ir->type;
451 var->name = ralloc_strdup(var, ir->name);
452
453 var->data.always_active_io = ir->data.always_active_io;
454 var->data.read_only = ir->data.read_only;
455 var->data.centroid = ir->data.centroid;
456 var->data.sample = ir->data.sample;
457 var->data.patch = ir->data.patch;
458 var->data.how_declared = get_nir_how_declared(ir->data.how_declared);
459 var->data.invariant = ir->data.invariant;
460 var->data.location = ir->data.location;
461 var->data.stream = ir->data.stream;
462 if (ir->data.stream & (1u << 31))
463 var->data.stream |= NIR_STREAM_PACKED;
464
465 var->data.precision = ir->data.precision;
466 var->data.explicit_location = ir->data.explicit_location;
467 var->data.from_named_ifc_block = ir->data.from_named_ifc_block;
468 var->data.compact = false;
469
470 switch(ir->data.mode) {
471 case ir_var_auto:
472 case ir_var_temporary:
473 if (is_global)
474 var->data.mode = nir_var_shader_temp;
475 else
476 var->data.mode = nir_var_function_temp;
477 break;
478
479 case ir_var_function_in:
480 case ir_var_const_in:
481 var->data.mode = nir_var_function_temp;
482 break;
483
484 case ir_var_shader_in:
485 if (shader->info.stage == MESA_SHADER_GEOMETRY &&
486 ir->data.location == VARYING_SLOT_PRIMITIVE_ID) {
487 /* For whatever reason, GLSL IR makes gl_PrimitiveIDIn an input */
488 var->data.location = SYSTEM_VALUE_PRIMITIVE_ID;
489 var->data.mode = nir_var_system_value;
490 } else {
491 var->data.mode = nir_var_shader_in;
492
493 if (shader->info.stage == MESA_SHADER_TESS_EVAL &&
494 (ir->data.location == VARYING_SLOT_TESS_LEVEL_INNER ||
495 ir->data.location == VARYING_SLOT_TESS_LEVEL_OUTER)) {
496 var->data.compact = ir->type->without_array()->is_scalar();
497 }
498
499 if (shader->info.stage > MESA_SHADER_VERTEX &&
500 ir->data.location >= VARYING_SLOT_CLIP_DIST0 &&
501 ir->data.location <= VARYING_SLOT_CULL_DIST1) {
502 var->data.compact = ir->type->without_array()->is_scalar();
503 }
504 }
505 break;
506
507 case ir_var_shader_out:
508 var->data.mode = nir_var_shader_out;
509 if (shader->info.stage == MESA_SHADER_TESS_CTRL &&
510 (ir->data.location == VARYING_SLOT_TESS_LEVEL_INNER ||
511 ir->data.location == VARYING_SLOT_TESS_LEVEL_OUTER)) {
512 var->data.compact = ir->type->without_array()->is_scalar();
513 }
514
515 if (shader->info.stage <= MESA_SHADER_GEOMETRY &&
516 ir->data.location >= VARYING_SLOT_CLIP_DIST0 &&
517 ir->data.location <= VARYING_SLOT_CULL_DIST1) {
518 var->data.compact = ir->type->without_array()->is_scalar();
519 }
520 break;
521
522 case ir_var_uniform:
523 if (ir->get_interface_type())
524 var->data.mode = nir_var_mem_ubo;
525 else
526 var->data.mode = nir_var_uniform;
527 break;
528
529 case ir_var_shader_storage:
530 var->data.mode = nir_var_mem_ssbo;
531 break;
532
533 case ir_var_system_value:
534 var->data.mode = nir_var_system_value;
535 break;
536
537 default:
538 unreachable("not reached");
539 }
540
541 unsigned mem_access = 0;
542 if (ir->data.memory_read_only)
543 mem_access |= ACCESS_NON_WRITEABLE;
544 if (ir->data.memory_write_only)
545 mem_access |= ACCESS_NON_READABLE;
546 if (ir->data.memory_coherent)
547 mem_access |= ACCESS_COHERENT;
548 if (ir->data.memory_volatile)
549 mem_access |= ACCESS_VOLATILE;
550 if (ir->data.memory_restrict)
551 mem_access |= ACCESS_RESTRICT;
552
553 var->interface_type = ir->get_interface_type();
554
555 /* For UBO and SSBO variables, we need explicit types */
556 if (var->data.mode & (nir_var_mem_ubo | nir_var_mem_ssbo)) {
557 const glsl_type *explicit_ifc_type =
558 ir->get_interface_type()->get_explicit_interface_type(supports_std430);
559
560 var->interface_type = explicit_ifc_type;
561
562 if (ir->type->without_array()->is_interface()) {
563 /* If the type contains the interface, wrap the explicit type in the
564 * right number of arrays.
565 */
566 var->type = wrap_type_in_array(explicit_ifc_type, ir->type);
567 } else {
568 /* Otherwise, this variable is one entry in the interface */
569 UNUSED bool found = false;
570 for (unsigned i = 0; i < explicit_ifc_type->length; i++) {
571 const glsl_struct_field *field =
572 &explicit_ifc_type->fields.structure[i];
573 if (strcmp(ir->name, field->name) != 0)
574 continue;
575
576 var->type = field->type;
577 if (field->memory_read_only)
578 mem_access |= ACCESS_NON_WRITEABLE;
579 if (field->memory_write_only)
580 mem_access |= ACCESS_NON_READABLE;
581 if (field->memory_coherent)
582 mem_access |= ACCESS_COHERENT;
583 if (field->memory_volatile)
584 mem_access |= ACCESS_VOLATILE;
585 if (field->memory_restrict)
586 mem_access |= ACCESS_RESTRICT;
587
588 found = true;
589 break;
590 }
591 assert(found);
592 }
593 }
594
595 var->data.interpolation = ir->data.interpolation;
596 var->data.location_frac = ir->data.location_frac;
597
598 switch (ir->data.depth_layout) {
599 case ir_depth_layout_none:
600 var->data.depth_layout = nir_depth_layout_none;
601 break;
602 case ir_depth_layout_any:
603 var->data.depth_layout = nir_depth_layout_any;
604 break;
605 case ir_depth_layout_greater:
606 var->data.depth_layout = nir_depth_layout_greater;
607 break;
608 case ir_depth_layout_less:
609 var->data.depth_layout = nir_depth_layout_less;
610 break;
611 case ir_depth_layout_unchanged:
612 var->data.depth_layout = nir_depth_layout_unchanged;
613 break;
614 default:
615 unreachable("not reached");
616 }
617
618 var->data.index = ir->data.index;
619 var->data.descriptor_set = 0;
620 var->data.binding = ir->data.binding;
621 var->data.explicit_binding = ir->data.explicit_binding;
622 var->data.bindless = ir->data.bindless;
623 var->data.offset = ir->data.offset;
624 var->data.access = (gl_access_qualifier)mem_access;
625
626 if (var->type->without_array()->is_image()) {
627 var->data.image.format = ir->data.image_format;
628 } else if (var->data.mode == nir_var_shader_out) {
629 var->data.xfb.buffer = ir->data.xfb_buffer;
630 var->data.xfb.stride = ir->data.xfb_stride;
631 }
632
633 var->data.fb_fetch_output = ir->data.fb_fetch_output;
634 var->data.explicit_xfb_buffer = ir->data.explicit_xfb_buffer;
635 var->data.explicit_xfb_stride = ir->data.explicit_xfb_stride;
636
637 var->num_state_slots = ir->get_num_state_slots();
638 if (var->num_state_slots > 0) {
639 var->state_slots = rzalloc_array(var, nir_state_slot,
640 var->num_state_slots);
641
642 ir_state_slot *state_slots = ir->get_state_slots();
643 for (unsigned i = 0; i < var->num_state_slots; i++) {
644 for (unsigned j = 0; j < 5; j++)
645 var->state_slots[i].tokens[j] = state_slots[i].tokens[j];
646 var->state_slots[i].swizzle = state_slots[i].swizzle;
647 }
648 } else {
649 var->state_slots = NULL;
650 }
651
652 var->constant_initializer = constant_copy(ir->constant_initializer, var);
653
654 if (var->data.mode == nir_var_function_temp)
655 nir_function_impl_add_variable(impl, var);
656 else
657 nir_shader_add_variable(shader, var);
658
659 _mesa_hash_table_insert(var_table, ir, var);
660 }
661
662 ir_visitor_status
663 nir_function_visitor::visit_enter(ir_function *ir)
664 {
665 foreach_in_list(ir_function_signature, sig, &ir->signatures) {
666 visitor->create_function(sig);
667 }
668 return visit_continue_with_parent;
669 }
670
671 void
672 nir_visitor::create_function(ir_function_signature *ir)
673 {
674 if (ir->is_intrinsic())
675 return;
676
677 nir_function *func = nir_function_create(shader, ir->function_name());
678 if (strcmp(ir->function_name(), "main") == 0)
679 func->is_entrypoint = true;
680
681 func->num_params = ir->parameters.length() +
682 (ir->return_type != glsl_type::void_type);
683 func->params = ralloc_array(shader, nir_parameter, func->num_params);
684
685 unsigned np = 0;
686
687 if (ir->return_type != glsl_type::void_type) {
688 /* The return value is a variable deref (basically an out parameter) */
689 func->params[np].num_components = 1;
690 func->params[np].bit_size = 32;
691 np++;
692 }
693
694 foreach_in_list(ir_variable, param, &ir->parameters) {
695 /* FINISHME: pass arrays, structs, etc by reference? */
696 assert(param->type->is_vector() || param->type->is_scalar());
697
698 if (param->data.mode == ir_var_function_in) {
699 func->params[np].num_components = param->type->vector_elements;
700 func->params[np].bit_size = glsl_get_bit_size(param->type);
701 } else {
702 func->params[np].num_components = 1;
703 func->params[np].bit_size = 32;
704 }
705 np++;
706 }
707 assert(np == func->num_params);
708
709 _mesa_hash_table_insert(this->overload_table, ir, func);
710 }
711
712 void
713 nir_visitor::visit(ir_function *ir)
714 {
715 foreach_in_list(ir_function_signature, sig, &ir->signatures)
716 sig->accept(this);
717 }
718
719 void
720 nir_visitor::visit(ir_function_signature *ir)
721 {
722 if (ir->is_intrinsic())
723 return;
724
725 this->sig = ir;
726
727 struct hash_entry *entry =
728 _mesa_hash_table_search(this->overload_table, ir);
729
730 assert(entry);
731 nir_function *func = (nir_function *) entry->data;
732
733 if (ir->is_defined) {
734 nir_function_impl *impl = nir_function_impl_create(func);
735 this->impl = impl;
736
737 this->is_global = false;
738
739 nir_builder_init(&b, impl);
740 b.cursor = nir_after_cf_list(&impl->body);
741
742 unsigned i = (ir->return_type != glsl_type::void_type) ? 1 : 0;
743
744 foreach_in_list(ir_variable, param, &ir->parameters) {
745 nir_variable *var =
746 nir_local_variable_create(impl, param->type, param->name);
747
748 if (param->data.mode == ir_var_function_in) {
749 nir_store_var(&b, var, nir_load_param(&b, i), ~0);
750 }
751
752 _mesa_hash_table_insert(var_table, param, var);
753 i++;
754 }
755
756 visit_exec_list(&ir->body, this);
757
758 this->is_global = true;
759 } else {
760 func->impl = NULL;
761 }
762 }
763
764 void
765 nir_visitor::visit(ir_loop *ir)
766 {
767 nir_push_loop(&b);
768 visit_exec_list(&ir->body_instructions, this);
769 nir_pop_loop(&b, NULL);
770 }
771
772 void
773 nir_visitor::visit(ir_if *ir)
774 {
775 nir_push_if(&b, evaluate_rvalue(ir->condition));
776 visit_exec_list(&ir->then_instructions, this);
777 nir_push_else(&b, NULL);
778 visit_exec_list(&ir->else_instructions, this);
779 nir_pop_if(&b, NULL);
780 }
781
782 void
783 nir_visitor::visit(ir_discard *ir)
784 {
785 /*
786 * discards aren't treated as control flow, because before we lower them
787 * they can appear anywhere in the shader and the stuff after them may still
788 * be executed (yay, crazy GLSL rules!). However, after lowering, all the
789 * discards will be immediately followed by a return.
790 */
791
792 nir_intrinsic_instr *discard;
793 if (ir->condition) {
794 discard = nir_intrinsic_instr_create(this->shader,
795 nir_intrinsic_discard_if);
796 discard->src[0] =
797 nir_src_for_ssa(evaluate_rvalue(ir->condition));
798 } else {
799 discard = nir_intrinsic_instr_create(this->shader, nir_intrinsic_discard);
800 }
801
802 nir_builder_instr_insert(&b, &discard->instr);
803 }
804
805 void
806 nir_visitor::visit(ir_demote *ir)
807 {
808 nir_intrinsic_instr *demote =
809 nir_intrinsic_instr_create(this->shader, nir_intrinsic_demote);
810
811 nir_builder_instr_insert(&b, &demote->instr);
812 }
813
814 void
815 nir_visitor::visit(ir_emit_vertex *ir)
816 {
817 nir_intrinsic_instr *instr =
818 nir_intrinsic_instr_create(this->shader, nir_intrinsic_emit_vertex);
819 nir_intrinsic_set_stream_id(instr, ir->stream_id());
820 nir_builder_instr_insert(&b, &instr->instr);
821 }
822
823 void
824 nir_visitor::visit(ir_end_primitive *ir)
825 {
826 nir_intrinsic_instr *instr =
827 nir_intrinsic_instr_create(this->shader, nir_intrinsic_end_primitive);
828 nir_intrinsic_set_stream_id(instr, ir->stream_id());
829 nir_builder_instr_insert(&b, &instr->instr);
830 }
831
832 void
833 nir_visitor::visit(ir_loop_jump *ir)
834 {
835 nir_jump_type type;
836 switch (ir->mode) {
837 case ir_loop_jump::jump_break:
838 type = nir_jump_break;
839 break;
840 case ir_loop_jump::jump_continue:
841 type = nir_jump_continue;
842 break;
843 default:
844 unreachable("not reached");
845 }
846
847 nir_jump_instr *instr = nir_jump_instr_create(this->shader, type);
848 nir_builder_instr_insert(&b, &instr->instr);
849 }
850
851 void
852 nir_visitor::visit(ir_return *ir)
853 {
854 if (ir->value != NULL) {
855 nir_deref_instr *ret_deref =
856 nir_build_deref_cast(&b, nir_load_param(&b, 0),
857 nir_var_function_temp, ir->value->type, 0);
858
859 nir_ssa_def *val = evaluate_rvalue(ir->value);
860 nir_store_deref(&b, ret_deref, val, ~0);
861 }
862
863 nir_jump_instr *instr = nir_jump_instr_create(this->shader, nir_jump_return);
864 nir_builder_instr_insert(&b, &instr->instr);
865 }
866
867 static void
868 intrinsic_set_std430_align(nir_intrinsic_instr *intrin, const glsl_type *type)
869 {
870 unsigned bit_size = type->is_boolean() ? 32 : glsl_get_bit_size(type);
871 unsigned pow2_components = util_next_power_of_two(type->vector_elements);
872 nir_intrinsic_set_align(intrin, (bit_size / 8) * pow2_components, 0);
873 }
874
875 /* Accumulate any qualifiers along the deref chain to get the actual
876 * load/store qualifier.
877 */
878
879 static enum gl_access_qualifier
880 deref_get_qualifier(nir_deref_instr *deref)
881 {
882 nir_deref_path path;
883 nir_deref_path_init(&path, deref, NULL);
884
885 unsigned qualifiers = path.path[0]->var->data.access;
886
887 const glsl_type *parent_type = path.path[0]->type;
888 for (nir_deref_instr **cur_ptr = &path.path[1]; *cur_ptr; cur_ptr++) {
889 nir_deref_instr *cur = *cur_ptr;
890
891 if (parent_type->is_interface()) {
892 const struct glsl_struct_field *field =
893 &parent_type->fields.structure[cur->strct.index];
894 if (field->memory_read_only)
895 qualifiers |= ACCESS_NON_WRITEABLE;
896 if (field->memory_write_only)
897 qualifiers |= ACCESS_NON_READABLE;
898 if (field->memory_coherent)
899 qualifiers |= ACCESS_COHERENT;
900 if (field->memory_volatile)
901 qualifiers |= ACCESS_VOLATILE;
902 if (field->memory_restrict)
903 qualifiers |= ACCESS_RESTRICT;
904 }
905
906 parent_type = cur->type;
907 }
908
909 nir_deref_path_finish(&path);
910
911 return (gl_access_qualifier) qualifiers;
912 }
913
914 void
915 nir_visitor::visit(ir_call *ir)
916 {
917 if (ir->callee->is_intrinsic()) {
918 nir_intrinsic_op op;
919
920 switch (ir->callee->intrinsic_id) {
921 case ir_intrinsic_generic_atomic_add:
922 op = ir->return_deref->type->is_integer_32_64()
923 ? nir_intrinsic_deref_atomic_add : nir_intrinsic_deref_atomic_fadd;
924 break;
925 case ir_intrinsic_generic_atomic_and:
926 op = nir_intrinsic_deref_atomic_and;
927 break;
928 case ir_intrinsic_generic_atomic_or:
929 op = nir_intrinsic_deref_atomic_or;
930 break;
931 case ir_intrinsic_generic_atomic_xor:
932 op = nir_intrinsic_deref_atomic_xor;
933 break;
934 case ir_intrinsic_generic_atomic_min:
935 assert(ir->return_deref);
936 if (ir->return_deref->type == glsl_type::int_type)
937 op = nir_intrinsic_deref_atomic_imin;
938 else if (ir->return_deref->type == glsl_type::uint_type)
939 op = nir_intrinsic_deref_atomic_umin;
940 else if (ir->return_deref->type == glsl_type::float_type)
941 op = nir_intrinsic_deref_atomic_fmin;
942 else
943 unreachable("Invalid type");
944 break;
945 case ir_intrinsic_generic_atomic_max:
946 assert(ir->return_deref);
947 if (ir->return_deref->type == glsl_type::int_type)
948 op = nir_intrinsic_deref_atomic_imax;
949 else if (ir->return_deref->type == glsl_type::uint_type)
950 op = nir_intrinsic_deref_atomic_umax;
951 else if (ir->return_deref->type == glsl_type::float_type)
952 op = nir_intrinsic_deref_atomic_fmax;
953 else
954 unreachable("Invalid type");
955 break;
956 case ir_intrinsic_generic_atomic_exchange:
957 op = nir_intrinsic_deref_atomic_exchange;
958 break;
959 case ir_intrinsic_generic_atomic_comp_swap:
960 op = ir->return_deref->type->is_integer_32_64()
961 ? nir_intrinsic_deref_atomic_comp_swap
962 : nir_intrinsic_deref_atomic_fcomp_swap;
963 break;
964 case ir_intrinsic_atomic_counter_read:
965 op = nir_intrinsic_atomic_counter_read_deref;
966 break;
967 case ir_intrinsic_atomic_counter_increment:
968 op = nir_intrinsic_atomic_counter_inc_deref;
969 break;
970 case ir_intrinsic_atomic_counter_predecrement:
971 op = nir_intrinsic_atomic_counter_pre_dec_deref;
972 break;
973 case ir_intrinsic_atomic_counter_add:
974 op = nir_intrinsic_atomic_counter_add_deref;
975 break;
976 case ir_intrinsic_atomic_counter_and:
977 op = nir_intrinsic_atomic_counter_and_deref;
978 break;
979 case ir_intrinsic_atomic_counter_or:
980 op = nir_intrinsic_atomic_counter_or_deref;
981 break;
982 case ir_intrinsic_atomic_counter_xor:
983 op = nir_intrinsic_atomic_counter_xor_deref;
984 break;
985 case ir_intrinsic_atomic_counter_min:
986 op = nir_intrinsic_atomic_counter_min_deref;
987 break;
988 case ir_intrinsic_atomic_counter_max:
989 op = nir_intrinsic_atomic_counter_max_deref;
990 break;
991 case ir_intrinsic_atomic_counter_exchange:
992 op = nir_intrinsic_atomic_counter_exchange_deref;
993 break;
994 case ir_intrinsic_atomic_counter_comp_swap:
995 op = nir_intrinsic_atomic_counter_comp_swap_deref;
996 break;
997 case ir_intrinsic_image_load:
998 op = nir_intrinsic_image_deref_load;
999 break;
1000 case ir_intrinsic_image_store:
1001 op = nir_intrinsic_image_deref_store;
1002 break;
1003 case ir_intrinsic_image_atomic_add:
1004 op = ir->return_deref->type->is_integer_32_64()
1005 ? nir_intrinsic_image_deref_atomic_add
1006 : nir_intrinsic_image_deref_atomic_fadd;
1007 break;
1008 case ir_intrinsic_image_atomic_min:
1009 if (ir->return_deref->type == glsl_type::int_type)
1010 op = nir_intrinsic_image_deref_atomic_imin;
1011 else if (ir->return_deref->type == glsl_type::uint_type)
1012 op = nir_intrinsic_image_deref_atomic_umin;
1013 else
1014 unreachable("Invalid type");
1015 break;
1016 case ir_intrinsic_image_atomic_max:
1017 if (ir->return_deref->type == glsl_type::int_type)
1018 op = nir_intrinsic_image_deref_atomic_imax;
1019 else if (ir->return_deref->type == glsl_type::uint_type)
1020 op = nir_intrinsic_image_deref_atomic_umax;
1021 else
1022 unreachable("Invalid type");
1023 break;
1024 case ir_intrinsic_image_atomic_and:
1025 op = nir_intrinsic_image_deref_atomic_and;
1026 break;
1027 case ir_intrinsic_image_atomic_or:
1028 op = nir_intrinsic_image_deref_atomic_or;
1029 break;
1030 case ir_intrinsic_image_atomic_xor:
1031 op = nir_intrinsic_image_deref_atomic_xor;
1032 break;
1033 case ir_intrinsic_image_atomic_exchange:
1034 op = nir_intrinsic_image_deref_atomic_exchange;
1035 break;
1036 case ir_intrinsic_image_atomic_comp_swap:
1037 op = nir_intrinsic_image_deref_atomic_comp_swap;
1038 break;
1039 case ir_intrinsic_image_atomic_inc_wrap:
1040 op = nir_intrinsic_image_deref_atomic_inc_wrap;
1041 break;
1042 case ir_intrinsic_image_atomic_dec_wrap:
1043 op = nir_intrinsic_image_deref_atomic_dec_wrap;
1044 break;
1045 case ir_intrinsic_memory_barrier:
1046 op = nir_intrinsic_memory_barrier;
1047 break;
1048 case ir_intrinsic_image_size:
1049 op = nir_intrinsic_image_deref_size;
1050 break;
1051 case ir_intrinsic_image_samples:
1052 op = nir_intrinsic_image_deref_samples;
1053 break;
1054 case ir_intrinsic_ssbo_store:
1055 op = nir_intrinsic_store_ssbo;
1056 break;
1057 case ir_intrinsic_ssbo_load:
1058 op = nir_intrinsic_load_ssbo;
1059 break;
1060 case ir_intrinsic_ssbo_atomic_add:
1061 op = ir->return_deref->type->is_integer_32_64()
1062 ? nir_intrinsic_ssbo_atomic_add : nir_intrinsic_ssbo_atomic_fadd;
1063 break;
1064 case ir_intrinsic_ssbo_atomic_and:
1065 op = nir_intrinsic_ssbo_atomic_and;
1066 break;
1067 case ir_intrinsic_ssbo_atomic_or:
1068 op = nir_intrinsic_ssbo_atomic_or;
1069 break;
1070 case ir_intrinsic_ssbo_atomic_xor:
1071 op = nir_intrinsic_ssbo_atomic_xor;
1072 break;
1073 case ir_intrinsic_ssbo_atomic_min:
1074 assert(ir->return_deref);
1075 if (ir->return_deref->type == glsl_type::int_type)
1076 op = nir_intrinsic_ssbo_atomic_imin;
1077 else if (ir->return_deref->type == glsl_type::uint_type)
1078 op = nir_intrinsic_ssbo_atomic_umin;
1079 else if (ir->return_deref->type == glsl_type::float_type)
1080 op = nir_intrinsic_ssbo_atomic_fmin;
1081 else
1082 unreachable("Invalid type");
1083 break;
1084 case ir_intrinsic_ssbo_atomic_max:
1085 assert(ir->return_deref);
1086 if (ir->return_deref->type == glsl_type::int_type)
1087 op = nir_intrinsic_ssbo_atomic_imax;
1088 else if (ir->return_deref->type == glsl_type::uint_type)
1089 op = nir_intrinsic_ssbo_atomic_umax;
1090 else if (ir->return_deref->type == glsl_type::float_type)
1091 op = nir_intrinsic_ssbo_atomic_fmax;
1092 else
1093 unreachable("Invalid type");
1094 break;
1095 case ir_intrinsic_ssbo_atomic_exchange:
1096 op = nir_intrinsic_ssbo_atomic_exchange;
1097 break;
1098 case ir_intrinsic_ssbo_atomic_comp_swap:
1099 op = ir->return_deref->type->is_integer_32_64()
1100 ? nir_intrinsic_ssbo_atomic_comp_swap
1101 : nir_intrinsic_ssbo_atomic_fcomp_swap;
1102 break;
1103 case ir_intrinsic_shader_clock:
1104 op = nir_intrinsic_shader_clock;
1105 break;
1106 case ir_intrinsic_begin_invocation_interlock:
1107 op = nir_intrinsic_begin_invocation_interlock;
1108 break;
1109 case ir_intrinsic_end_invocation_interlock:
1110 op = nir_intrinsic_end_invocation_interlock;
1111 break;
1112 case ir_intrinsic_group_memory_barrier:
1113 op = nir_intrinsic_group_memory_barrier;
1114 break;
1115 case ir_intrinsic_memory_barrier_atomic_counter:
1116 op = nir_intrinsic_memory_barrier_atomic_counter;
1117 break;
1118 case ir_intrinsic_memory_barrier_buffer:
1119 op = nir_intrinsic_memory_barrier_buffer;
1120 break;
1121 case ir_intrinsic_memory_barrier_image:
1122 op = nir_intrinsic_memory_barrier_image;
1123 break;
1124 case ir_intrinsic_memory_barrier_shared:
1125 op = nir_intrinsic_memory_barrier_shared;
1126 break;
1127 case ir_intrinsic_shared_load:
1128 op = nir_intrinsic_load_shared;
1129 break;
1130 case ir_intrinsic_shared_store:
1131 op = nir_intrinsic_store_shared;
1132 break;
1133 case ir_intrinsic_shared_atomic_add:
1134 op = ir->return_deref->type->is_integer_32_64()
1135 ? nir_intrinsic_shared_atomic_add
1136 : nir_intrinsic_shared_atomic_fadd;
1137 break;
1138 case ir_intrinsic_shared_atomic_and:
1139 op = nir_intrinsic_shared_atomic_and;
1140 break;
1141 case ir_intrinsic_shared_atomic_or:
1142 op = nir_intrinsic_shared_atomic_or;
1143 break;
1144 case ir_intrinsic_shared_atomic_xor:
1145 op = nir_intrinsic_shared_atomic_xor;
1146 break;
1147 case ir_intrinsic_shared_atomic_min:
1148 assert(ir->return_deref);
1149 if (ir->return_deref->type == glsl_type::int_type)
1150 op = nir_intrinsic_shared_atomic_imin;
1151 else if (ir->return_deref->type == glsl_type::uint_type)
1152 op = nir_intrinsic_shared_atomic_umin;
1153 else if (ir->return_deref->type == glsl_type::float_type)
1154 op = nir_intrinsic_shared_atomic_fmin;
1155 else
1156 unreachable("Invalid type");
1157 break;
1158 case ir_intrinsic_shared_atomic_max:
1159 assert(ir->return_deref);
1160 if (ir->return_deref->type == glsl_type::int_type)
1161 op = nir_intrinsic_shared_atomic_imax;
1162 else if (ir->return_deref->type == glsl_type::uint_type)
1163 op = nir_intrinsic_shared_atomic_umax;
1164 else if (ir->return_deref->type == glsl_type::float_type)
1165 op = nir_intrinsic_shared_atomic_fmax;
1166 else
1167 unreachable("Invalid type");
1168 break;
1169 case ir_intrinsic_shared_atomic_exchange:
1170 op = nir_intrinsic_shared_atomic_exchange;
1171 break;
1172 case ir_intrinsic_shared_atomic_comp_swap:
1173 op = ir->return_deref->type->is_integer_32_64()
1174 ? nir_intrinsic_shared_atomic_comp_swap
1175 : nir_intrinsic_shared_atomic_fcomp_swap;
1176 break;
1177 case ir_intrinsic_vote_any:
1178 op = nir_intrinsic_vote_any;
1179 break;
1180 case ir_intrinsic_vote_all:
1181 op = nir_intrinsic_vote_all;
1182 break;
1183 case ir_intrinsic_vote_eq:
1184 op = nir_intrinsic_vote_ieq;
1185 break;
1186 case ir_intrinsic_ballot:
1187 op = nir_intrinsic_ballot;
1188 break;
1189 case ir_intrinsic_read_invocation:
1190 op = nir_intrinsic_read_invocation;
1191 break;
1192 case ir_intrinsic_read_first_invocation:
1193 op = nir_intrinsic_read_first_invocation;
1194 break;
1195 case ir_intrinsic_helper_invocation:
1196 op = nir_intrinsic_is_helper_invocation;
1197 break;
1198 default:
1199 unreachable("not reached");
1200 }
1201
1202 nir_intrinsic_instr *instr = nir_intrinsic_instr_create(shader, op);
1203 nir_ssa_def *ret = &instr->dest.ssa;
1204
1205 switch (op) {
1206 case nir_intrinsic_deref_atomic_add:
1207 case nir_intrinsic_deref_atomic_imin:
1208 case nir_intrinsic_deref_atomic_umin:
1209 case nir_intrinsic_deref_atomic_imax:
1210 case nir_intrinsic_deref_atomic_umax:
1211 case nir_intrinsic_deref_atomic_and:
1212 case nir_intrinsic_deref_atomic_or:
1213 case nir_intrinsic_deref_atomic_xor:
1214 case nir_intrinsic_deref_atomic_exchange:
1215 case nir_intrinsic_deref_atomic_comp_swap:
1216 case nir_intrinsic_deref_atomic_fadd:
1217 case nir_intrinsic_deref_atomic_fmin:
1218 case nir_intrinsic_deref_atomic_fmax:
1219 case nir_intrinsic_deref_atomic_fcomp_swap: {
1220 int param_count = ir->actual_parameters.length();
1221 assert(param_count == 2 || param_count == 3);
1222
1223 /* Deref */
1224 exec_node *param = ir->actual_parameters.get_head();
1225 ir_rvalue *rvalue = (ir_rvalue *) param;
1226 ir_dereference *deref = rvalue->as_dereference();
1227 ir_swizzle *swizzle = NULL;
1228 if (!deref) {
1229 /* We may have a swizzle to pick off a single vec4 component */
1230 swizzle = rvalue->as_swizzle();
1231 assert(swizzle && swizzle->type->vector_elements == 1);
1232 deref = swizzle->val->as_dereference();
1233 assert(deref);
1234 }
1235 nir_deref_instr *nir_deref = evaluate_deref(deref);
1236 if (swizzle) {
1237 nir_deref = nir_build_deref_array_imm(&b, nir_deref,
1238 swizzle->mask.x);
1239 }
1240 instr->src[0] = nir_src_for_ssa(&nir_deref->dest.ssa);
1241
1242 nir_intrinsic_set_access(instr, deref_get_qualifier(nir_deref));
1243
1244 /* data1 parameter (this is always present) */
1245 param = param->get_next();
1246 ir_instruction *inst = (ir_instruction *) param;
1247 instr->src[1] = nir_src_for_ssa(evaluate_rvalue(inst->as_rvalue()));
1248
1249 /* data2 parameter (only with atomic_comp_swap) */
1250 if (param_count == 3) {
1251 assert(op == nir_intrinsic_deref_atomic_comp_swap ||
1252 op == nir_intrinsic_deref_atomic_fcomp_swap);
1253 param = param->get_next();
1254 inst = (ir_instruction *) param;
1255 instr->src[2] = nir_src_for_ssa(evaluate_rvalue(inst->as_rvalue()));
1256 }
1257
1258 /* Atomic result */
1259 assert(ir->return_deref);
1260 nir_ssa_dest_init(&instr->instr, &instr->dest,
1261 ir->return_deref->type->vector_elements, 32, NULL);
1262 nir_builder_instr_insert(&b, &instr->instr);
1263 break;
1264 }
1265 case nir_intrinsic_atomic_counter_read_deref:
1266 case nir_intrinsic_atomic_counter_inc_deref:
1267 case nir_intrinsic_atomic_counter_pre_dec_deref:
1268 case nir_intrinsic_atomic_counter_add_deref:
1269 case nir_intrinsic_atomic_counter_min_deref:
1270 case nir_intrinsic_atomic_counter_max_deref:
1271 case nir_intrinsic_atomic_counter_and_deref:
1272 case nir_intrinsic_atomic_counter_or_deref:
1273 case nir_intrinsic_atomic_counter_xor_deref:
1274 case nir_intrinsic_atomic_counter_exchange_deref:
1275 case nir_intrinsic_atomic_counter_comp_swap_deref: {
1276 /* Set the counter variable dereference. */
1277 exec_node *param = ir->actual_parameters.get_head();
1278 ir_dereference *counter = (ir_dereference *)param;
1279
1280 instr->src[0] = nir_src_for_ssa(&evaluate_deref(counter)->dest.ssa);
1281 param = param->get_next();
1282
1283 /* Set the intrinsic destination. */
1284 if (ir->return_deref) {
1285 nir_ssa_dest_init(&instr->instr, &instr->dest, 1, 32, NULL);
1286 }
1287
1288 /* Set the intrinsic parameters. */
1289 if (!param->is_tail_sentinel()) {
1290 instr->src[1] =
1291 nir_src_for_ssa(evaluate_rvalue((ir_dereference *)param));
1292 param = param->get_next();
1293 }
1294
1295 if (!param->is_tail_sentinel()) {
1296 instr->src[2] =
1297 nir_src_for_ssa(evaluate_rvalue((ir_dereference *)param));
1298 param = param->get_next();
1299 }
1300
1301 nir_builder_instr_insert(&b, &instr->instr);
1302 break;
1303 }
1304 case nir_intrinsic_image_deref_load:
1305 case nir_intrinsic_image_deref_store:
1306 case nir_intrinsic_image_deref_atomic_add:
1307 case nir_intrinsic_image_deref_atomic_imin:
1308 case nir_intrinsic_image_deref_atomic_umin:
1309 case nir_intrinsic_image_deref_atomic_imax:
1310 case nir_intrinsic_image_deref_atomic_umax:
1311 case nir_intrinsic_image_deref_atomic_and:
1312 case nir_intrinsic_image_deref_atomic_or:
1313 case nir_intrinsic_image_deref_atomic_xor:
1314 case nir_intrinsic_image_deref_atomic_exchange:
1315 case nir_intrinsic_image_deref_atomic_comp_swap:
1316 case nir_intrinsic_image_deref_atomic_fadd:
1317 case nir_intrinsic_image_deref_samples:
1318 case nir_intrinsic_image_deref_size:
1319 case nir_intrinsic_image_deref_atomic_inc_wrap:
1320 case nir_intrinsic_image_deref_atomic_dec_wrap: {
1321 nir_ssa_undef_instr *instr_undef =
1322 nir_ssa_undef_instr_create(shader, 1, 32);
1323 nir_builder_instr_insert(&b, &instr_undef->instr);
1324
1325 /* Set the image variable dereference. */
1326 exec_node *param = ir->actual_parameters.get_head();
1327 ir_dereference *image = (ir_dereference *)param;
1328 nir_deref_instr *deref = evaluate_deref(image);
1329 const glsl_type *type = deref->type;
1330
1331 nir_intrinsic_set_access(instr, deref_get_qualifier(deref));
1332
1333 instr->src[0] = nir_src_for_ssa(&deref->dest.ssa);
1334 param = param->get_next();
1335
1336 /* Set the intrinsic destination. */
1337 if (ir->return_deref) {
1338 unsigned num_components = ir->return_deref->type->vector_elements;
1339 nir_ssa_dest_init(&instr->instr, &instr->dest,
1340 num_components, 32, NULL);
1341 }
1342
1343 if (op == nir_intrinsic_image_deref_size) {
1344 instr->num_components = instr->dest.ssa.num_components;
1345 } else if (op == nir_intrinsic_image_deref_load ||
1346 op == nir_intrinsic_image_deref_store) {
1347 instr->num_components = 4;
1348 }
1349
1350 if (op == nir_intrinsic_image_deref_size ||
1351 op == nir_intrinsic_image_deref_samples) {
1352 nir_builder_instr_insert(&b, &instr->instr);
1353 break;
1354 }
1355
1356 /* Set the address argument, extending the coordinate vector to four
1357 * components.
1358 */
1359 nir_ssa_def *src_addr =
1360 evaluate_rvalue((ir_dereference *)param);
1361 nir_ssa_def *srcs[4];
1362
1363 for (int i = 0; i < 4; i++) {
1364 if (i < type->coordinate_components())
1365 srcs[i] = nir_channel(&b, src_addr, i);
1366 else
1367 srcs[i] = &instr_undef->def;
1368 }
1369
1370 instr->src[1] = nir_src_for_ssa(nir_vec(&b, srcs, 4));
1371 param = param->get_next();
1372
1373 /* Set the sample argument, which is undefined for single-sample
1374 * images.
1375 */
1376 if (type->sampler_dimensionality == GLSL_SAMPLER_DIM_MS) {
1377 instr->src[2] =
1378 nir_src_for_ssa(evaluate_rvalue((ir_dereference *)param));
1379 param = param->get_next();
1380 } else {
1381 instr->src[2] = nir_src_for_ssa(&instr_undef->def);
1382 }
1383
1384 /* Set the intrinsic parameters. */
1385 if (!param->is_tail_sentinel()) {
1386 instr->src[3] =
1387 nir_src_for_ssa(evaluate_rvalue((ir_dereference *)param));
1388 param = param->get_next();
1389 } else if (op == nir_intrinsic_image_deref_load) {
1390 instr->src[3] = nir_src_for_ssa(nir_imm_int(&b, 0)); /* LOD */
1391 }
1392
1393 if (!param->is_tail_sentinel()) {
1394 instr->src[4] =
1395 nir_src_for_ssa(evaluate_rvalue((ir_dereference *)param));
1396 param = param->get_next();
1397 } else if (op == nir_intrinsic_image_deref_store) {
1398 instr->src[4] = nir_src_for_ssa(nir_imm_int(&b, 0)); /* LOD */
1399 }
1400
1401 nir_builder_instr_insert(&b, &instr->instr);
1402 break;
1403 }
1404 case nir_intrinsic_memory_barrier:
1405 case nir_intrinsic_group_memory_barrier:
1406 case nir_intrinsic_memory_barrier_atomic_counter:
1407 case nir_intrinsic_memory_barrier_buffer:
1408 case nir_intrinsic_memory_barrier_image:
1409 case nir_intrinsic_memory_barrier_shared:
1410 nir_builder_instr_insert(&b, &instr->instr);
1411 break;
1412 case nir_intrinsic_shader_clock:
1413 nir_ssa_dest_init(&instr->instr, &instr->dest, 2, 32, NULL);
1414 instr->num_components = 2;
1415 nir_builder_instr_insert(&b, &instr->instr);
1416 break;
1417 case nir_intrinsic_begin_invocation_interlock:
1418 nir_builder_instr_insert(&b, &instr->instr);
1419 break;
1420 case nir_intrinsic_end_invocation_interlock:
1421 nir_builder_instr_insert(&b, &instr->instr);
1422 break;
1423 case nir_intrinsic_store_ssbo: {
1424 exec_node *param = ir->actual_parameters.get_head();
1425 ir_rvalue *block = ((ir_instruction *)param)->as_rvalue();
1426
1427 param = param->get_next();
1428 ir_rvalue *offset = ((ir_instruction *)param)->as_rvalue();
1429
1430 param = param->get_next();
1431 ir_rvalue *val = ((ir_instruction *)param)->as_rvalue();
1432
1433 param = param->get_next();
1434 ir_constant *write_mask = ((ir_instruction *)param)->as_constant();
1435 assert(write_mask);
1436
1437 nir_ssa_def *nir_val = evaluate_rvalue(val);
1438 if (val->type->is_boolean())
1439 nir_val = nir_b2i32(&b, nir_val);
1440
1441 instr->src[0] = nir_src_for_ssa(nir_val);
1442 instr->src[1] = nir_src_for_ssa(evaluate_rvalue(block));
1443 instr->src[2] = nir_src_for_ssa(evaluate_rvalue(offset));
1444 intrinsic_set_std430_align(instr, val->type);
1445 nir_intrinsic_set_write_mask(instr, write_mask->value.u[0]);
1446 instr->num_components = val->type->vector_elements;
1447
1448 nir_builder_instr_insert(&b, &instr->instr);
1449 break;
1450 }
1451 case nir_intrinsic_load_ssbo: {
1452 exec_node *param = ir->actual_parameters.get_head();
1453 ir_rvalue *block = ((ir_instruction *)param)->as_rvalue();
1454
1455 param = param->get_next();
1456 ir_rvalue *offset = ((ir_instruction *)param)->as_rvalue();
1457
1458 instr->src[0] = nir_src_for_ssa(evaluate_rvalue(block));
1459 instr->src[1] = nir_src_for_ssa(evaluate_rvalue(offset));
1460
1461 const glsl_type *type = ir->return_deref->var->type;
1462 instr->num_components = type->vector_elements;
1463 intrinsic_set_std430_align(instr, type);
1464
1465 /* Setup destination register */
1466 unsigned bit_size = type->is_boolean() ? 32 : glsl_get_bit_size(type);
1467 nir_ssa_dest_init(&instr->instr, &instr->dest,
1468 type->vector_elements, bit_size, NULL);
1469
1470 /* Insert the created nir instruction now since in the case of boolean
1471 * result we will need to emit another instruction after it
1472 */
1473 nir_builder_instr_insert(&b, &instr->instr);
1474
1475 /*
1476 * In SSBO/UBO's, a true boolean value is any non-zero value, but we
1477 * consider a true boolean to be ~0. Fix this up with a != 0
1478 * comparison.
1479 */
1480 if (type->is_boolean())
1481 ret = nir_i2b(&b, &instr->dest.ssa);
1482 break;
1483 }
1484 case nir_intrinsic_ssbo_atomic_add:
1485 case nir_intrinsic_ssbo_atomic_imin:
1486 case nir_intrinsic_ssbo_atomic_umin:
1487 case nir_intrinsic_ssbo_atomic_imax:
1488 case nir_intrinsic_ssbo_atomic_umax:
1489 case nir_intrinsic_ssbo_atomic_and:
1490 case nir_intrinsic_ssbo_atomic_or:
1491 case nir_intrinsic_ssbo_atomic_xor:
1492 case nir_intrinsic_ssbo_atomic_exchange:
1493 case nir_intrinsic_ssbo_atomic_comp_swap:
1494 case nir_intrinsic_ssbo_atomic_fadd:
1495 case nir_intrinsic_ssbo_atomic_fmin:
1496 case nir_intrinsic_ssbo_atomic_fmax:
1497 case nir_intrinsic_ssbo_atomic_fcomp_swap: {
1498 int param_count = ir->actual_parameters.length();
1499 assert(param_count == 3 || param_count == 4);
1500
1501 /* Block index */
1502 exec_node *param = ir->actual_parameters.get_head();
1503 ir_instruction *inst = (ir_instruction *) param;
1504 instr->src[0] = nir_src_for_ssa(evaluate_rvalue(inst->as_rvalue()));
1505
1506 /* Offset */
1507 param = param->get_next();
1508 inst = (ir_instruction *) param;
1509 instr->src[1] = nir_src_for_ssa(evaluate_rvalue(inst->as_rvalue()));
1510
1511 /* data1 parameter (this is always present) */
1512 param = param->get_next();
1513 inst = (ir_instruction *) param;
1514 instr->src[2] = nir_src_for_ssa(evaluate_rvalue(inst->as_rvalue()));
1515
1516 /* data2 parameter (only with atomic_comp_swap) */
1517 if (param_count == 4) {
1518 assert(op == nir_intrinsic_ssbo_atomic_comp_swap ||
1519 op == nir_intrinsic_ssbo_atomic_fcomp_swap);
1520 param = param->get_next();
1521 inst = (ir_instruction *) param;
1522 instr->src[3] = nir_src_for_ssa(evaluate_rvalue(inst->as_rvalue()));
1523 }
1524
1525 /* Atomic result */
1526 assert(ir->return_deref);
1527 nir_ssa_dest_init(&instr->instr, &instr->dest,
1528 ir->return_deref->type->vector_elements, 32, NULL);
1529 nir_builder_instr_insert(&b, &instr->instr);
1530 break;
1531 }
1532 case nir_intrinsic_load_shared: {
1533 exec_node *param = ir->actual_parameters.get_head();
1534 ir_rvalue *offset = ((ir_instruction *)param)->as_rvalue();
1535
1536 nir_intrinsic_set_base(instr, 0);
1537 instr->src[0] = nir_src_for_ssa(evaluate_rvalue(offset));
1538
1539 const glsl_type *type = ir->return_deref->var->type;
1540 instr->num_components = type->vector_elements;
1541 intrinsic_set_std430_align(instr, type);
1542
1543 /* Setup destination register */
1544 unsigned bit_size = type->is_boolean() ? 32 : glsl_get_bit_size(type);
1545 nir_ssa_dest_init(&instr->instr, &instr->dest,
1546 type->vector_elements, bit_size, NULL);
1547
1548 nir_builder_instr_insert(&b, &instr->instr);
1549
1550 /* The value in shared memory is a 32-bit value */
1551 if (type->is_boolean())
1552 ret = nir_i2b(&b, &instr->dest.ssa);
1553 break;
1554 }
1555 case nir_intrinsic_store_shared: {
1556 exec_node *param = ir->actual_parameters.get_head();
1557 ir_rvalue *offset = ((ir_instruction *)param)->as_rvalue();
1558
1559 param = param->get_next();
1560 ir_rvalue *val = ((ir_instruction *)param)->as_rvalue();
1561
1562 param = param->get_next();
1563 ir_constant *write_mask = ((ir_instruction *)param)->as_constant();
1564 assert(write_mask);
1565
1566 nir_intrinsic_set_base(instr, 0);
1567 instr->src[1] = nir_src_for_ssa(evaluate_rvalue(offset));
1568
1569 nir_intrinsic_set_write_mask(instr, write_mask->value.u[0]);
1570
1571 nir_ssa_def *nir_val = evaluate_rvalue(val);
1572 /* The value in shared memory is a 32-bit value */
1573 if (val->type->is_boolean())
1574 nir_val = nir_b2i32(&b, nir_val);
1575
1576 instr->src[0] = nir_src_for_ssa(nir_val);
1577 instr->num_components = val->type->vector_elements;
1578 intrinsic_set_std430_align(instr, val->type);
1579
1580 nir_builder_instr_insert(&b, &instr->instr);
1581 break;
1582 }
1583 case nir_intrinsic_shared_atomic_add:
1584 case nir_intrinsic_shared_atomic_imin:
1585 case nir_intrinsic_shared_atomic_umin:
1586 case nir_intrinsic_shared_atomic_imax:
1587 case nir_intrinsic_shared_atomic_umax:
1588 case nir_intrinsic_shared_atomic_and:
1589 case nir_intrinsic_shared_atomic_or:
1590 case nir_intrinsic_shared_atomic_xor:
1591 case nir_intrinsic_shared_atomic_exchange:
1592 case nir_intrinsic_shared_atomic_comp_swap:
1593 case nir_intrinsic_shared_atomic_fadd:
1594 case nir_intrinsic_shared_atomic_fmin:
1595 case nir_intrinsic_shared_atomic_fmax:
1596 case nir_intrinsic_shared_atomic_fcomp_swap: {
1597 int param_count = ir->actual_parameters.length();
1598 assert(param_count == 2 || param_count == 3);
1599
1600 /* Offset */
1601 exec_node *param = ir->actual_parameters.get_head();
1602 ir_instruction *inst = (ir_instruction *) param;
1603 instr->src[0] = nir_src_for_ssa(evaluate_rvalue(inst->as_rvalue()));
1604
1605 /* data1 parameter (this is always present) */
1606 param = param->get_next();
1607 inst = (ir_instruction *) param;
1608 instr->src[1] = nir_src_for_ssa(evaluate_rvalue(inst->as_rvalue()));
1609
1610 /* data2 parameter (only with atomic_comp_swap) */
1611 if (param_count == 3) {
1612 assert(op == nir_intrinsic_shared_atomic_comp_swap ||
1613 op == nir_intrinsic_shared_atomic_fcomp_swap);
1614 param = param->get_next();
1615 inst = (ir_instruction *) param;
1616 instr->src[2] =
1617 nir_src_for_ssa(evaluate_rvalue(inst->as_rvalue()));
1618 }
1619
1620 /* Atomic result */
1621 assert(ir->return_deref);
1622 unsigned bit_size = glsl_get_bit_size(ir->return_deref->type);
1623 nir_ssa_dest_init(&instr->instr, &instr->dest,
1624 ir->return_deref->type->vector_elements,
1625 bit_size, NULL);
1626 nir_builder_instr_insert(&b, &instr->instr);
1627 break;
1628 }
1629 case nir_intrinsic_vote_any:
1630 case nir_intrinsic_vote_all:
1631 case nir_intrinsic_vote_ieq: {
1632 nir_ssa_dest_init(&instr->instr, &instr->dest, 1, 1, NULL);
1633 instr->num_components = 1;
1634
1635 ir_rvalue *value = (ir_rvalue *) ir->actual_parameters.get_head();
1636 instr->src[0] = nir_src_for_ssa(evaluate_rvalue(value));
1637
1638 nir_builder_instr_insert(&b, &instr->instr);
1639 break;
1640 }
1641
1642 case nir_intrinsic_ballot: {
1643 nir_ssa_dest_init(&instr->instr, &instr->dest,
1644 ir->return_deref->type->vector_elements, 64, NULL);
1645 instr->num_components = ir->return_deref->type->vector_elements;
1646
1647 ir_rvalue *value = (ir_rvalue *) ir->actual_parameters.get_head();
1648 instr->src[0] = nir_src_for_ssa(evaluate_rvalue(value));
1649
1650 nir_builder_instr_insert(&b, &instr->instr);
1651 break;
1652 }
1653 case nir_intrinsic_read_invocation: {
1654 nir_ssa_dest_init(&instr->instr, &instr->dest,
1655 ir->return_deref->type->vector_elements, 32, NULL);
1656 instr->num_components = ir->return_deref->type->vector_elements;
1657
1658 ir_rvalue *value = (ir_rvalue *) ir->actual_parameters.get_head();
1659 instr->src[0] = nir_src_for_ssa(evaluate_rvalue(value));
1660
1661 ir_rvalue *invocation = (ir_rvalue *) ir->actual_parameters.get_head()->next;
1662 instr->src[1] = nir_src_for_ssa(evaluate_rvalue(invocation));
1663
1664 nir_builder_instr_insert(&b, &instr->instr);
1665 break;
1666 }
1667 case nir_intrinsic_read_first_invocation: {
1668 nir_ssa_dest_init(&instr->instr, &instr->dest,
1669 ir->return_deref->type->vector_elements, 32, NULL);
1670 instr->num_components = ir->return_deref->type->vector_elements;
1671
1672 ir_rvalue *value = (ir_rvalue *) ir->actual_parameters.get_head();
1673 instr->src[0] = nir_src_for_ssa(evaluate_rvalue(value));
1674
1675 nir_builder_instr_insert(&b, &instr->instr);
1676 break;
1677 }
1678 case nir_intrinsic_is_helper_invocation: {
1679 nir_ssa_dest_init(&instr->instr, &instr->dest, 1, 1, NULL);
1680 instr->num_components = 1;
1681 nir_builder_instr_insert(&b, &instr->instr);
1682 break;
1683 }
1684 default:
1685 unreachable("not reached");
1686 }
1687
1688 if (ir->return_deref)
1689 nir_store_deref(&b, evaluate_deref(ir->return_deref), ret, ~0);
1690
1691 return;
1692 }
1693
1694 struct hash_entry *entry =
1695 _mesa_hash_table_search(this->overload_table, ir->callee);
1696 assert(entry);
1697 nir_function *callee = (nir_function *) entry->data;
1698
1699 nir_call_instr *call = nir_call_instr_create(this->shader, callee);
1700
1701 unsigned i = 0;
1702 nir_deref_instr *ret_deref = NULL;
1703 if (ir->return_deref) {
1704 nir_variable *ret_tmp =
1705 nir_local_variable_create(this->impl, ir->return_deref->type,
1706 "return_tmp");
1707 ret_deref = nir_build_deref_var(&b, ret_tmp);
1708 call->params[i++] = nir_src_for_ssa(&ret_deref->dest.ssa);
1709 }
1710
1711 foreach_two_lists(formal_node, &ir->callee->parameters,
1712 actual_node, &ir->actual_parameters) {
1713 ir_rvalue *param_rvalue = (ir_rvalue *) actual_node;
1714 ir_variable *sig_param = (ir_variable *) formal_node;
1715
1716 if (sig_param->data.mode == ir_var_function_out) {
1717 nir_deref_instr *out_deref = evaluate_deref(param_rvalue);
1718 call->params[i] = nir_src_for_ssa(&out_deref->dest.ssa);
1719 } else if (sig_param->data.mode == ir_var_function_in) {
1720 nir_ssa_def *val = evaluate_rvalue(param_rvalue);
1721 nir_src src = nir_src_for_ssa(val);
1722
1723 nir_src_copy(&call->params[i], &src, call);
1724 } else if (sig_param->data.mode == ir_var_function_inout) {
1725 unreachable("unimplemented: inout parameters");
1726 }
1727
1728 i++;
1729 }
1730
1731 nir_builder_instr_insert(&b, &call->instr);
1732
1733 if (ir->return_deref)
1734 nir_store_deref(&b, evaluate_deref(ir->return_deref), nir_load_deref(&b, ret_deref), ~0);
1735 }
1736
1737 void
1738 nir_visitor::visit(ir_assignment *ir)
1739 {
1740 unsigned num_components = ir->lhs->type->vector_elements;
1741
1742 b.exact = ir->lhs->variable_referenced()->data.invariant ||
1743 ir->lhs->variable_referenced()->data.precise;
1744
1745 if ((ir->rhs->as_dereference() || ir->rhs->as_constant()) &&
1746 (ir->write_mask == (1 << num_components) - 1 || ir->write_mask == 0)) {
1747 nir_deref_instr *lhs = evaluate_deref(ir->lhs);
1748 nir_deref_instr *rhs = evaluate_deref(ir->rhs);
1749 enum gl_access_qualifier lhs_qualifiers = deref_get_qualifier(lhs);
1750 enum gl_access_qualifier rhs_qualifiers = deref_get_qualifier(rhs);
1751 if (ir->condition) {
1752 nir_push_if(&b, evaluate_rvalue(ir->condition));
1753 nir_copy_deref_with_access(&b, lhs, rhs, lhs_qualifiers,
1754 rhs_qualifiers);
1755 nir_pop_if(&b, NULL);
1756 } else {
1757 nir_copy_deref_with_access(&b, lhs, rhs, lhs_qualifiers,
1758 rhs_qualifiers);
1759 }
1760 return;
1761 }
1762
1763 assert(ir->rhs->type->is_scalar() || ir->rhs->type->is_vector());
1764
1765 ir->lhs->accept(this);
1766 nir_deref_instr *lhs_deref = this->deref;
1767 nir_ssa_def *src = evaluate_rvalue(ir->rhs);
1768
1769 if (ir->write_mask != (1 << num_components) - 1 && ir->write_mask != 0) {
1770 /* GLSL IR will give us the input to the write-masked assignment in a
1771 * single packed vector. So, for example, if the writemask is xzw, then
1772 * we have to swizzle x -> x, y -> z, and z -> w and get the y component
1773 * from the load.
1774 */
1775 unsigned swiz[4];
1776 unsigned component = 0;
1777 for (unsigned i = 0; i < 4; i++) {
1778 swiz[i] = ir->write_mask & (1 << i) ? component++ : 0;
1779 }
1780 src = nir_swizzle(&b, src, swiz, num_components);
1781 }
1782
1783 enum gl_access_qualifier qualifiers = deref_get_qualifier(lhs_deref);
1784 if (ir->condition) {
1785 nir_push_if(&b, evaluate_rvalue(ir->condition));
1786 nir_store_deref_with_access(&b, lhs_deref, src, ir->write_mask,
1787 qualifiers);
1788 nir_pop_if(&b, NULL);
1789 } else {
1790 nir_store_deref_with_access(&b, lhs_deref, src, ir->write_mask,
1791 qualifiers);
1792 }
1793 }
1794
1795 /*
1796 * Given an instruction, returns a pointer to its destination or NULL if there
1797 * is no destination.
1798 *
1799 * Note that this only handles instructions we generate at this level.
1800 */
1801 static nir_dest *
1802 get_instr_dest(nir_instr *instr)
1803 {
1804 nir_alu_instr *alu_instr;
1805 nir_intrinsic_instr *intrinsic_instr;
1806 nir_tex_instr *tex_instr;
1807
1808 switch (instr->type) {
1809 case nir_instr_type_alu:
1810 alu_instr = nir_instr_as_alu(instr);
1811 return &alu_instr->dest.dest;
1812
1813 case nir_instr_type_intrinsic:
1814 intrinsic_instr = nir_instr_as_intrinsic(instr);
1815 if (nir_intrinsic_infos[intrinsic_instr->intrinsic].has_dest)
1816 return &intrinsic_instr->dest;
1817 else
1818 return NULL;
1819
1820 case nir_instr_type_tex:
1821 tex_instr = nir_instr_as_tex(instr);
1822 return &tex_instr->dest;
1823
1824 default:
1825 unreachable("not reached");
1826 }
1827
1828 return NULL;
1829 }
1830
1831 void
1832 nir_visitor::add_instr(nir_instr *instr, unsigned num_components,
1833 unsigned bit_size)
1834 {
1835 nir_dest *dest = get_instr_dest(instr);
1836
1837 if (dest)
1838 nir_ssa_dest_init(instr, dest, num_components, bit_size, NULL);
1839
1840 nir_builder_instr_insert(&b, instr);
1841
1842 if (dest) {
1843 assert(dest->is_ssa);
1844 this->result = &dest->ssa;
1845 }
1846 }
1847
1848 nir_ssa_def *
1849 nir_visitor::evaluate_rvalue(ir_rvalue* ir)
1850 {
1851 ir->accept(this);
1852 if (ir->as_dereference() || ir->as_constant()) {
1853 /*
1854 * A dereference is being used on the right hand side, which means we
1855 * must emit a variable load.
1856 */
1857
1858 enum gl_access_qualifier access = deref_get_qualifier(this->deref);
1859 this->result = nir_load_deref_with_access(&b, this->deref, access);
1860 }
1861
1862 return this->result;
1863 }
1864
1865 static bool
1866 type_is_float(glsl_base_type type)
1867 {
1868 return type == GLSL_TYPE_FLOAT || type == GLSL_TYPE_DOUBLE ||
1869 type == GLSL_TYPE_FLOAT16;
1870 }
1871
1872 static bool
1873 type_is_signed(glsl_base_type type)
1874 {
1875 return type == GLSL_TYPE_INT || type == GLSL_TYPE_INT64 ||
1876 type == GLSL_TYPE_INT16;
1877 }
1878
1879 void
1880 nir_visitor::visit(ir_expression *ir)
1881 {
1882 /* Some special cases */
1883 switch (ir->operation) {
1884 case ir_binop_ubo_load: {
1885 nir_intrinsic_instr *load =
1886 nir_intrinsic_instr_create(this->shader, nir_intrinsic_load_ubo);
1887 unsigned bit_size = ir->type->is_boolean() ? 32 :
1888 glsl_get_bit_size(ir->type);
1889 load->num_components = ir->type->vector_elements;
1890 load->src[0] = nir_src_for_ssa(evaluate_rvalue(ir->operands[0]));
1891 load->src[1] = nir_src_for_ssa(evaluate_rvalue(ir->operands[1]));
1892 intrinsic_set_std430_align(load, ir->type);
1893 add_instr(&load->instr, ir->type->vector_elements, bit_size);
1894
1895 /*
1896 * In UBO's, a true boolean value is any non-zero value, but we consider
1897 * a true boolean to be ~0. Fix this up with a != 0 comparison.
1898 */
1899
1900 if (ir->type->is_boolean())
1901 this->result = nir_i2b(&b, &load->dest.ssa);
1902
1903 return;
1904 }
1905
1906 case ir_unop_interpolate_at_centroid:
1907 case ir_binop_interpolate_at_offset:
1908 case ir_binop_interpolate_at_sample: {
1909 ir_dereference *deref = ir->operands[0]->as_dereference();
1910 ir_swizzle *swizzle = NULL;
1911 if (!deref) {
1912 /* the api does not allow a swizzle here, but the varying packing code
1913 * may have pushed one into here.
1914 */
1915 swizzle = ir->operands[0]->as_swizzle();
1916 assert(swizzle);
1917 deref = swizzle->val->as_dereference();
1918 assert(deref);
1919 }
1920
1921 deref->accept(this);
1922
1923 nir_intrinsic_op op;
1924 if (this->deref->mode == nir_var_shader_in) {
1925 switch (ir->operation) {
1926 case ir_unop_interpolate_at_centroid:
1927 op = nir_intrinsic_interp_deref_at_centroid;
1928 break;
1929 case ir_binop_interpolate_at_offset:
1930 op = nir_intrinsic_interp_deref_at_offset;
1931 break;
1932 case ir_binop_interpolate_at_sample:
1933 op = nir_intrinsic_interp_deref_at_sample;
1934 break;
1935 default:
1936 unreachable("Invalid interpolation intrinsic");
1937 }
1938 } else {
1939 /* This case can happen if the vertex shader does not write the
1940 * given varying. In this case, the linker will lower it to a
1941 * global variable. Since interpolating a variable makes no
1942 * sense, we'll just turn it into a load which will probably
1943 * eventually end up as an SSA definition.
1944 */
1945 assert(this->deref->mode == nir_var_shader_temp);
1946 op = nir_intrinsic_load_deref;
1947 }
1948
1949 nir_intrinsic_instr *intrin = nir_intrinsic_instr_create(shader, op);
1950 intrin->num_components = deref->type->vector_elements;
1951 intrin->src[0] = nir_src_for_ssa(&this->deref->dest.ssa);
1952
1953 if (intrin->intrinsic == nir_intrinsic_interp_deref_at_offset ||
1954 intrin->intrinsic == nir_intrinsic_interp_deref_at_sample)
1955 intrin->src[1] = nir_src_for_ssa(evaluate_rvalue(ir->operands[1]));
1956
1957 unsigned bit_size = glsl_get_bit_size(deref->type);
1958 add_instr(&intrin->instr, deref->type->vector_elements, bit_size);
1959
1960 if (swizzle) {
1961 unsigned swiz[4] = {
1962 swizzle->mask.x, swizzle->mask.y, swizzle->mask.z, swizzle->mask.w
1963 };
1964
1965 result = nir_swizzle(&b, result, swiz,
1966 swizzle->type->vector_elements);
1967 }
1968
1969 return;
1970 }
1971
1972 case ir_unop_ssbo_unsized_array_length: {
1973 nir_intrinsic_instr *intrin =
1974 nir_intrinsic_instr_create(b.shader,
1975 nir_intrinsic_deref_buffer_array_length);
1976
1977 ir_dereference *deref = ir->operands[0]->as_dereference();
1978 intrin->src[0] = nir_src_for_ssa(&evaluate_deref(deref)->dest.ssa);
1979
1980 add_instr(&intrin->instr, 1, 32);
1981 return;
1982 }
1983
1984 default:
1985 break;
1986 }
1987
1988 nir_ssa_def *srcs[4];
1989 for (unsigned i = 0; i < ir->num_operands; i++)
1990 srcs[i] = evaluate_rvalue(ir->operands[i]);
1991
1992 glsl_base_type types[4];
1993 for (unsigned i = 0; i < ir->num_operands; i++)
1994 types[i] = ir->operands[i]->type->base_type;
1995
1996 glsl_base_type out_type = ir->type->base_type;
1997
1998 switch (ir->operation) {
1999 case ir_unop_bit_not: result = nir_inot(&b, srcs[0]); break;
2000 case ir_unop_logic_not:
2001 result = nir_inot(&b, srcs[0]);
2002 break;
2003 case ir_unop_neg:
2004 result = type_is_float(types[0]) ? nir_fneg(&b, srcs[0])
2005 : nir_ineg(&b, srcs[0]);
2006 break;
2007 case ir_unop_abs:
2008 result = type_is_float(types[0]) ? nir_fabs(&b, srcs[0])
2009 : nir_iabs(&b, srcs[0]);
2010 break;
2011 case ir_unop_clz:
2012 result = nir_uclz(&b, srcs[0]);
2013 break;
2014 case ir_unop_saturate:
2015 assert(type_is_float(types[0]));
2016 result = nir_fsat(&b, srcs[0]);
2017 break;
2018 case ir_unop_sign:
2019 result = type_is_float(types[0]) ? nir_fsign(&b, srcs[0])
2020 : nir_isign(&b, srcs[0]);
2021 break;
2022 case ir_unop_rcp: result = nir_frcp(&b, srcs[0]); break;
2023 case ir_unop_rsq: result = nir_frsq(&b, srcs[0]); break;
2024 case ir_unop_sqrt: result = nir_fsqrt(&b, srcs[0]); break;
2025 case ir_unop_exp: unreachable("ir_unop_exp should have been lowered");
2026 case ir_unop_log: unreachable("ir_unop_log should have been lowered");
2027 case ir_unop_exp2: result = nir_fexp2(&b, srcs[0]); break;
2028 case ir_unop_log2: result = nir_flog2(&b, srcs[0]); break;
2029 case ir_unop_i2f:
2030 case ir_unop_u2f:
2031 case ir_unop_b2f:
2032 case ir_unop_f2i:
2033 case ir_unop_f2u:
2034 case ir_unop_f2b:
2035 case ir_unop_i2b:
2036 case ir_unop_b2i:
2037 case ir_unop_b2i64:
2038 case ir_unop_d2f:
2039 case ir_unop_f2d:
2040 case ir_unop_f162f:
2041 case ir_unop_f2f16:
2042 case ir_unop_f162b:
2043 case ir_unop_b2f16:
2044 case ir_unop_d2i:
2045 case ir_unop_d2u:
2046 case ir_unop_d2b:
2047 case ir_unop_i2d:
2048 case ir_unop_u2d:
2049 case ir_unop_i642i:
2050 case ir_unop_i642u:
2051 case ir_unop_i642f:
2052 case ir_unop_i642b:
2053 case ir_unop_i642d:
2054 case ir_unop_u642i:
2055 case ir_unop_u642u:
2056 case ir_unop_u642f:
2057 case ir_unop_u642d:
2058 case ir_unop_i2i64:
2059 case ir_unop_u2i64:
2060 case ir_unop_f2i64:
2061 case ir_unop_d2i64:
2062 case ir_unop_i2u64:
2063 case ir_unop_u2u64:
2064 case ir_unop_f2u64:
2065 case ir_unop_d2u64:
2066 case ir_unop_i2u:
2067 case ir_unop_u2i:
2068 case ir_unop_i642u64:
2069 case ir_unop_u642i64: {
2070 nir_alu_type src_type = nir_get_nir_type_for_glsl_base_type(types[0]);
2071 nir_alu_type dst_type = nir_get_nir_type_for_glsl_base_type(out_type);
2072 result = nir_build_alu(&b, nir_type_conversion_op(src_type, dst_type,
2073 nir_rounding_mode_undef),
2074 srcs[0], NULL, NULL, NULL);
2075 /* b2i and b2f don't have fixed bit-size versions so the builder will
2076 * just assume 32 and we have to fix it up here.
2077 */
2078 result->bit_size = nir_alu_type_get_type_size(dst_type);
2079 break;
2080 }
2081
2082 case ir_unop_f2fmp: {
2083 result = nir_build_alu(&b, nir_op_f2fmp, srcs[0], NULL, NULL, NULL);
2084 break;
2085 }
2086
2087 case ir_unop_bitcast_i2f:
2088 case ir_unop_bitcast_f2i:
2089 case ir_unop_bitcast_u2f:
2090 case ir_unop_bitcast_f2u:
2091 case ir_unop_bitcast_i642d:
2092 case ir_unop_bitcast_d2i64:
2093 case ir_unop_bitcast_u642d:
2094 case ir_unop_bitcast_d2u64:
2095 case ir_unop_subroutine_to_int:
2096 /* no-op */
2097 result = nir_mov(&b, srcs[0]);
2098 break;
2099 case ir_unop_trunc: result = nir_ftrunc(&b, srcs[0]); break;
2100 case ir_unop_ceil: result = nir_fceil(&b, srcs[0]); break;
2101 case ir_unop_floor: result = nir_ffloor(&b, srcs[0]); break;
2102 case ir_unop_fract: result = nir_ffract(&b, srcs[0]); break;
2103 case ir_unop_frexp_exp: result = nir_frexp_exp(&b, srcs[0]); break;
2104 case ir_unop_frexp_sig: result = nir_frexp_sig(&b, srcs[0]); break;
2105 case ir_unop_round_even: result = nir_fround_even(&b, srcs[0]); break;
2106 case ir_unop_sin: result = nir_fsin(&b, srcs[0]); break;
2107 case ir_unop_cos: result = nir_fcos(&b, srcs[0]); break;
2108 case ir_unop_dFdx: result = nir_fddx(&b, srcs[0]); break;
2109 case ir_unop_dFdy: result = nir_fddy(&b, srcs[0]); break;
2110 case ir_unop_dFdx_fine: result = nir_fddx_fine(&b, srcs[0]); break;
2111 case ir_unop_dFdy_fine: result = nir_fddy_fine(&b, srcs[0]); break;
2112 case ir_unop_dFdx_coarse: result = nir_fddx_coarse(&b, srcs[0]); break;
2113 case ir_unop_dFdy_coarse: result = nir_fddy_coarse(&b, srcs[0]); break;
2114 case ir_unop_pack_snorm_2x16:
2115 result = nir_pack_snorm_2x16(&b, srcs[0]);
2116 break;
2117 case ir_unop_pack_snorm_4x8:
2118 result = nir_pack_snorm_4x8(&b, srcs[0]);
2119 break;
2120 case ir_unop_pack_unorm_2x16:
2121 result = nir_pack_unorm_2x16(&b, srcs[0]);
2122 break;
2123 case ir_unop_pack_unorm_4x8:
2124 result = nir_pack_unorm_4x8(&b, srcs[0]);
2125 break;
2126 case ir_unop_pack_half_2x16:
2127 result = nir_pack_half_2x16(&b, srcs[0]);
2128 break;
2129 case ir_unop_unpack_snorm_2x16:
2130 result = nir_unpack_snorm_2x16(&b, srcs[0]);
2131 break;
2132 case ir_unop_unpack_snorm_4x8:
2133 result = nir_unpack_snorm_4x8(&b, srcs[0]);
2134 break;
2135 case ir_unop_unpack_unorm_2x16:
2136 result = nir_unpack_unorm_2x16(&b, srcs[0]);
2137 break;
2138 case ir_unop_unpack_unorm_4x8:
2139 result = nir_unpack_unorm_4x8(&b, srcs[0]);
2140 break;
2141 case ir_unop_unpack_half_2x16:
2142 result = nir_unpack_half_2x16(&b, srcs[0]);
2143 break;
2144 case ir_unop_pack_sampler_2x32:
2145 case ir_unop_pack_image_2x32:
2146 case ir_unop_pack_double_2x32:
2147 case ir_unop_pack_int_2x32:
2148 case ir_unop_pack_uint_2x32:
2149 result = nir_pack_64_2x32(&b, srcs[0]);
2150 break;
2151 case ir_unop_unpack_sampler_2x32:
2152 case ir_unop_unpack_image_2x32:
2153 case ir_unop_unpack_double_2x32:
2154 case ir_unop_unpack_int_2x32:
2155 case ir_unop_unpack_uint_2x32:
2156 result = nir_unpack_64_2x32(&b, srcs[0]);
2157 break;
2158 case ir_unop_bitfield_reverse:
2159 result = nir_bitfield_reverse(&b, srcs[0]);
2160 break;
2161 case ir_unop_bit_count:
2162 result = nir_bit_count(&b, srcs[0]);
2163 break;
2164 case ir_unop_find_msb:
2165 switch (types[0]) {
2166 case GLSL_TYPE_UINT:
2167 result = nir_ufind_msb(&b, srcs[0]);
2168 break;
2169 case GLSL_TYPE_INT:
2170 result = nir_ifind_msb(&b, srcs[0]);
2171 break;
2172 default:
2173 unreachable("Invalid type for findMSB()");
2174 }
2175 break;
2176 case ir_unop_find_lsb:
2177 result = nir_find_lsb(&b, srcs[0]);
2178 break;
2179
2180 case ir_unop_noise:
2181 switch (ir->type->vector_elements) {
2182 case 1:
2183 switch (ir->operands[0]->type->vector_elements) {
2184 case 1: result = nir_fnoise1_1(&b, srcs[0]); break;
2185 case 2: result = nir_fnoise1_2(&b, srcs[0]); break;
2186 case 3: result = nir_fnoise1_3(&b, srcs[0]); break;
2187 case 4: result = nir_fnoise1_4(&b, srcs[0]); break;
2188 default: unreachable("not reached");
2189 }
2190 break;
2191 case 2:
2192 switch (ir->operands[0]->type->vector_elements) {
2193 case 1: result = nir_fnoise2_1(&b, srcs[0]); break;
2194 case 2: result = nir_fnoise2_2(&b, srcs[0]); break;
2195 case 3: result = nir_fnoise2_3(&b, srcs[0]); break;
2196 case 4: result = nir_fnoise2_4(&b, srcs[0]); break;
2197 default: unreachable("not reached");
2198 }
2199 break;
2200 case 3:
2201 switch (ir->operands[0]->type->vector_elements) {
2202 case 1: result = nir_fnoise3_1(&b, srcs[0]); break;
2203 case 2: result = nir_fnoise3_2(&b, srcs[0]); break;
2204 case 3: result = nir_fnoise3_3(&b, srcs[0]); break;
2205 case 4: result = nir_fnoise3_4(&b, srcs[0]); break;
2206 default: unreachable("not reached");
2207 }
2208 break;
2209 case 4:
2210 switch (ir->operands[0]->type->vector_elements) {
2211 case 1: result = nir_fnoise4_1(&b, srcs[0]); break;
2212 case 2: result = nir_fnoise4_2(&b, srcs[0]); break;
2213 case 3: result = nir_fnoise4_3(&b, srcs[0]); break;
2214 case 4: result = nir_fnoise4_4(&b, srcs[0]); break;
2215 default: unreachable("not reached");
2216 }
2217 break;
2218 default:
2219 unreachable("not reached");
2220 }
2221 break;
2222 case ir_unop_get_buffer_size: {
2223 nir_intrinsic_instr *load = nir_intrinsic_instr_create(
2224 this->shader,
2225 nir_intrinsic_get_buffer_size);
2226 load->num_components = ir->type->vector_elements;
2227 load->src[0] = nir_src_for_ssa(evaluate_rvalue(ir->operands[0]));
2228 unsigned bit_size = glsl_get_bit_size(ir->type);
2229 add_instr(&load->instr, ir->type->vector_elements, bit_size);
2230 return;
2231 }
2232
2233 case ir_unop_atan:
2234 result = nir_atan(&b, srcs[0]);
2235 break;
2236
2237 case ir_binop_add:
2238 result = type_is_float(out_type) ? nir_fadd(&b, srcs[0], srcs[1])
2239 : nir_iadd(&b, srcs[0], srcs[1]);
2240 break;
2241 case ir_binop_add_sat:
2242 result = type_is_signed(out_type) ? nir_iadd_sat(&b, srcs[0], srcs[1])
2243 : nir_uadd_sat(&b, srcs[0], srcs[1]);
2244 break;
2245 case ir_binop_sub:
2246 result = type_is_float(out_type) ? nir_fsub(&b, srcs[0], srcs[1])
2247 : nir_isub(&b, srcs[0], srcs[1]);
2248 break;
2249 case ir_binop_sub_sat:
2250 result = type_is_signed(out_type) ? nir_isub_sat(&b, srcs[0], srcs[1])
2251 : nir_usub_sat(&b, srcs[0], srcs[1]);
2252 break;
2253 case ir_binop_abs_sub:
2254 /* out_type is always unsigned for ir_binop_abs_sub, so we have to key
2255 * on the type of the sources.
2256 */
2257 result = type_is_signed(types[0]) ? nir_uabs_isub(&b, srcs[0], srcs[1])
2258 : nir_uabs_usub(&b, srcs[0], srcs[1]);
2259 break;
2260 case ir_binop_avg:
2261 result = type_is_signed(out_type) ? nir_ihadd(&b, srcs[0], srcs[1])
2262 : nir_uhadd(&b, srcs[0], srcs[1]);
2263 break;
2264 case ir_binop_avg_round:
2265 result = type_is_signed(out_type) ? nir_irhadd(&b, srcs[0], srcs[1])
2266 : nir_urhadd(&b, srcs[0], srcs[1]);
2267 break;
2268 case ir_binop_mul_32x16:
2269 result = type_is_signed(out_type) ? nir_imul_32x16(&b, srcs[0], srcs[1])
2270 : nir_umul_32x16(&b, srcs[0], srcs[1]);
2271 break;
2272 case ir_binop_mul:
2273 if (type_is_float(out_type))
2274 result = nir_fmul(&b, srcs[0], srcs[1]);
2275 else if (out_type == GLSL_TYPE_INT64 &&
2276 (ir->operands[0]->type->base_type == GLSL_TYPE_INT ||
2277 ir->operands[1]->type->base_type == GLSL_TYPE_INT))
2278 result = nir_imul_2x32_64(&b, srcs[0], srcs[1]);
2279 else if (out_type == GLSL_TYPE_UINT64 &&
2280 (ir->operands[0]->type->base_type == GLSL_TYPE_UINT ||
2281 ir->operands[1]->type->base_type == GLSL_TYPE_UINT))
2282 result = nir_umul_2x32_64(&b, srcs[0], srcs[1]);
2283 else
2284 result = nir_imul(&b, srcs[0], srcs[1]);
2285 break;
2286 case ir_binop_div:
2287 if (type_is_float(out_type))
2288 result = nir_fdiv(&b, srcs[0], srcs[1]);
2289 else if (type_is_signed(out_type))
2290 result = nir_idiv(&b, srcs[0], srcs[1]);
2291 else
2292 result = nir_udiv(&b, srcs[0], srcs[1]);
2293 break;
2294 case ir_binop_mod:
2295 result = type_is_float(out_type) ? nir_fmod(&b, srcs[0], srcs[1])
2296 : nir_umod(&b, srcs[0], srcs[1]);
2297 break;
2298 case ir_binop_min:
2299 if (type_is_float(out_type))
2300 result = nir_fmin(&b, srcs[0], srcs[1]);
2301 else if (type_is_signed(out_type))
2302 result = nir_imin(&b, srcs[0], srcs[1]);
2303 else
2304 result = nir_umin(&b, srcs[0], srcs[1]);
2305 break;
2306 case ir_binop_max:
2307 if (type_is_float(out_type))
2308 result = nir_fmax(&b, srcs[0], srcs[1]);
2309 else if (type_is_signed(out_type))
2310 result = nir_imax(&b, srcs[0], srcs[1]);
2311 else
2312 result = nir_umax(&b, srcs[0], srcs[1]);
2313 break;
2314 case ir_binop_pow: result = nir_fpow(&b, srcs[0], srcs[1]); break;
2315 case ir_binop_bit_and: result = nir_iand(&b, srcs[0], srcs[1]); break;
2316 case ir_binop_bit_or: result = nir_ior(&b, srcs[0], srcs[1]); break;
2317 case ir_binop_bit_xor: result = nir_ixor(&b, srcs[0], srcs[1]); break;
2318 case ir_binop_logic_and:
2319 result = nir_iand(&b, srcs[0], srcs[1]);
2320 break;
2321 case ir_binop_logic_or:
2322 result = nir_ior(&b, srcs[0], srcs[1]);
2323 break;
2324 case ir_binop_logic_xor:
2325 result = nir_ixor(&b, srcs[0], srcs[1]);
2326 break;
2327 case ir_binop_lshift: result = nir_ishl(&b, srcs[0], srcs[1]); break;
2328 case ir_binop_rshift:
2329 result = (type_is_signed(out_type)) ? nir_ishr(&b, srcs[0], srcs[1])
2330 : nir_ushr(&b, srcs[0], srcs[1]);
2331 break;
2332 case ir_binop_imul_high:
2333 result = (out_type == GLSL_TYPE_INT) ? nir_imul_high(&b, srcs[0], srcs[1])
2334 : nir_umul_high(&b, srcs[0], srcs[1]);
2335 break;
2336 case ir_binop_carry: result = nir_uadd_carry(&b, srcs[0], srcs[1]); break;
2337 case ir_binop_borrow: result = nir_usub_borrow(&b, srcs[0], srcs[1]); break;
2338 case ir_binop_less:
2339 if (type_is_float(types[0]))
2340 result = nir_flt(&b, srcs[0], srcs[1]);
2341 else if (type_is_signed(types[0]))
2342 result = nir_ilt(&b, srcs[0], srcs[1]);
2343 else
2344 result = nir_ult(&b, srcs[0], srcs[1]);
2345 break;
2346 case ir_binop_gequal:
2347 if (type_is_float(types[0]))
2348 result = nir_fge(&b, srcs[0], srcs[1]);
2349 else if (type_is_signed(types[0]))
2350 result = nir_ige(&b, srcs[0], srcs[1]);
2351 else
2352 result = nir_uge(&b, srcs[0], srcs[1]);
2353 break;
2354 case ir_binop_equal:
2355 if (type_is_float(types[0]))
2356 result = nir_feq(&b, srcs[0], srcs[1]);
2357 else
2358 result = nir_ieq(&b, srcs[0], srcs[1]);
2359 break;
2360 case ir_binop_nequal:
2361 if (type_is_float(types[0]))
2362 result = nir_fne(&b, srcs[0], srcs[1]);
2363 else
2364 result = nir_ine(&b, srcs[0], srcs[1]);
2365 break;
2366 case ir_binop_all_equal:
2367 if (type_is_float(types[0])) {
2368 switch (ir->operands[0]->type->vector_elements) {
2369 case 1: result = nir_feq(&b, srcs[0], srcs[1]); break;
2370 case 2: result = nir_ball_fequal2(&b, srcs[0], srcs[1]); break;
2371 case 3: result = nir_ball_fequal3(&b, srcs[0], srcs[1]); break;
2372 case 4: result = nir_ball_fequal4(&b, srcs[0], srcs[1]); break;
2373 default:
2374 unreachable("not reached");
2375 }
2376 } else {
2377 switch (ir->operands[0]->type->vector_elements) {
2378 case 1: result = nir_ieq(&b, srcs[0], srcs[1]); break;
2379 case 2: result = nir_ball_iequal2(&b, srcs[0], srcs[1]); break;
2380 case 3: result = nir_ball_iequal3(&b, srcs[0], srcs[1]); break;
2381 case 4: result = nir_ball_iequal4(&b, srcs[0], srcs[1]); break;
2382 default:
2383 unreachable("not reached");
2384 }
2385 }
2386 break;
2387 case ir_binop_any_nequal:
2388 if (type_is_float(types[0])) {
2389 switch (ir->operands[0]->type->vector_elements) {
2390 case 1: result = nir_fne(&b, srcs[0], srcs[1]); break;
2391 case 2: result = nir_bany_fnequal2(&b, srcs[0], srcs[1]); break;
2392 case 3: result = nir_bany_fnequal3(&b, srcs[0], srcs[1]); break;
2393 case 4: result = nir_bany_fnequal4(&b, srcs[0], srcs[1]); break;
2394 default:
2395 unreachable("not reached");
2396 }
2397 } else {
2398 switch (ir->operands[0]->type->vector_elements) {
2399 case 1: result = nir_ine(&b, srcs[0], srcs[1]); break;
2400 case 2: result = nir_bany_inequal2(&b, srcs[0], srcs[1]); break;
2401 case 3: result = nir_bany_inequal3(&b, srcs[0], srcs[1]); break;
2402 case 4: result = nir_bany_inequal4(&b, srcs[0], srcs[1]); break;
2403 default:
2404 unreachable("not reached");
2405 }
2406 }
2407 break;
2408 case ir_binop_dot:
2409 switch (ir->operands[0]->type->vector_elements) {
2410 case 2: result = nir_fdot2(&b, srcs[0], srcs[1]); break;
2411 case 3: result = nir_fdot3(&b, srcs[0], srcs[1]); break;
2412 case 4: result = nir_fdot4(&b, srcs[0], srcs[1]); break;
2413 default:
2414 unreachable("not reached");
2415 }
2416 break;
2417 case ir_binop_vector_extract: {
2418 result = nir_channel(&b, srcs[0], 0);
2419 for (unsigned i = 1; i < ir->operands[0]->type->vector_elements; i++) {
2420 nir_ssa_def *swizzled = nir_channel(&b, srcs[0], i);
2421 result = nir_bcsel(&b, nir_ieq(&b, srcs[1], nir_imm_int(&b, i)),
2422 swizzled, result);
2423 }
2424 break;
2425 }
2426
2427 case ir_binop_atan2:
2428 result = nir_atan2(&b, srcs[0], srcs[1]);
2429 break;
2430
2431 case ir_binop_ldexp: result = nir_ldexp(&b, srcs[0], srcs[1]); break;
2432 case ir_triop_fma:
2433 result = nir_ffma(&b, srcs[0], srcs[1], srcs[2]);
2434 break;
2435 case ir_triop_lrp:
2436 result = nir_flrp(&b, srcs[0], srcs[1], srcs[2]);
2437 break;
2438 case ir_triop_csel:
2439 result = nir_bcsel(&b, srcs[0], srcs[1], srcs[2]);
2440 break;
2441 case ir_triop_bitfield_extract:
2442 result = (out_type == GLSL_TYPE_INT) ?
2443 nir_ibitfield_extract(&b, srcs[0], srcs[1], srcs[2]) :
2444 nir_ubitfield_extract(&b, srcs[0], srcs[1], srcs[2]);
2445 break;
2446 case ir_quadop_bitfield_insert:
2447 result = nir_bitfield_insert(&b, srcs[0], srcs[1], srcs[2], srcs[3]);
2448 break;
2449 case ir_quadop_vector:
2450 result = nir_vec(&b, srcs, ir->type->vector_elements);
2451 break;
2452
2453 default:
2454 unreachable("not reached");
2455 }
2456 }
2457
2458 void
2459 nir_visitor::visit(ir_swizzle *ir)
2460 {
2461 unsigned swizzle[4] = { ir->mask.x, ir->mask.y, ir->mask.z, ir->mask.w };
2462 result = nir_swizzle(&b, evaluate_rvalue(ir->val), swizzle,
2463 ir->type->vector_elements);
2464 }
2465
2466 void
2467 nir_visitor::visit(ir_texture *ir)
2468 {
2469 unsigned num_srcs;
2470 nir_texop op;
2471 switch (ir->op) {
2472 case ir_tex:
2473 op = nir_texop_tex;
2474 num_srcs = 1; /* coordinate */
2475 break;
2476
2477 case ir_txb:
2478 case ir_txl:
2479 op = (ir->op == ir_txb) ? nir_texop_txb : nir_texop_txl;
2480 num_srcs = 2; /* coordinate, bias/lod */
2481 break;
2482
2483 case ir_txd:
2484 op = nir_texop_txd; /* coordinate, dPdx, dPdy */
2485 num_srcs = 3;
2486 break;
2487
2488 case ir_txf:
2489 op = nir_texop_txf;
2490 if (ir->lod_info.lod != NULL)
2491 num_srcs = 2; /* coordinate, lod */
2492 else
2493 num_srcs = 1; /* coordinate */
2494 break;
2495
2496 case ir_txf_ms:
2497 op = nir_texop_txf_ms;
2498 num_srcs = 2; /* coordinate, sample_index */
2499 break;
2500
2501 case ir_txs:
2502 op = nir_texop_txs;
2503 if (ir->lod_info.lod != NULL)
2504 num_srcs = 1; /* lod */
2505 else
2506 num_srcs = 0;
2507 break;
2508
2509 case ir_lod:
2510 op = nir_texop_lod;
2511 num_srcs = 1; /* coordinate */
2512 break;
2513
2514 case ir_tg4:
2515 op = nir_texop_tg4;
2516 num_srcs = 1; /* coordinate */
2517 break;
2518
2519 case ir_query_levels:
2520 op = nir_texop_query_levels;
2521 num_srcs = 0;
2522 break;
2523
2524 case ir_texture_samples:
2525 op = nir_texop_texture_samples;
2526 num_srcs = 0;
2527 break;
2528
2529 case ir_samples_identical:
2530 op = nir_texop_samples_identical;
2531 num_srcs = 1; /* coordinate */
2532 break;
2533
2534 default:
2535 unreachable("not reached");
2536 }
2537
2538 if (ir->projector != NULL)
2539 num_srcs++;
2540 if (ir->shadow_comparator != NULL)
2541 num_srcs++;
2542 /* offsets are constants we store inside nir_tex_intrs.offsets */
2543 if (ir->offset != NULL && !ir->offset->type->is_array())
2544 num_srcs++;
2545
2546 /* Add one for the texture deref */
2547 num_srcs += 2;
2548
2549 nir_tex_instr *instr = nir_tex_instr_create(this->shader, num_srcs);
2550
2551 instr->op = op;
2552 instr->sampler_dim =
2553 (glsl_sampler_dim) ir->sampler->type->sampler_dimensionality;
2554 instr->is_array = ir->sampler->type->sampler_array;
2555 instr->is_shadow = ir->sampler->type->sampler_shadow;
2556 if (instr->is_shadow)
2557 instr->is_new_style_shadow = (ir->type->vector_elements == 1);
2558 switch (ir->type->base_type) {
2559 case GLSL_TYPE_FLOAT:
2560 instr->dest_type = nir_type_float;
2561 break;
2562 case GLSL_TYPE_FLOAT16:
2563 instr->dest_type = nir_type_float16;
2564 break;
2565 case GLSL_TYPE_INT:
2566 instr->dest_type = nir_type_int;
2567 break;
2568 case GLSL_TYPE_BOOL:
2569 case GLSL_TYPE_UINT:
2570 instr->dest_type = nir_type_uint;
2571 break;
2572 default:
2573 unreachable("not reached");
2574 }
2575
2576 nir_deref_instr *sampler_deref = evaluate_deref(ir->sampler);
2577
2578 /* check for bindless handles */
2579 if (sampler_deref->mode != nir_var_uniform ||
2580 nir_deref_instr_get_variable(sampler_deref)->data.bindless) {
2581 nir_ssa_def *load = nir_load_deref(&b, sampler_deref);
2582 instr->src[0].src = nir_src_for_ssa(load);
2583 instr->src[0].src_type = nir_tex_src_texture_handle;
2584 instr->src[1].src = nir_src_for_ssa(load);
2585 instr->src[1].src_type = nir_tex_src_sampler_handle;
2586 } else {
2587 instr->src[0].src = nir_src_for_ssa(&sampler_deref->dest.ssa);
2588 instr->src[0].src_type = nir_tex_src_texture_deref;
2589 instr->src[1].src = nir_src_for_ssa(&sampler_deref->dest.ssa);
2590 instr->src[1].src_type = nir_tex_src_sampler_deref;
2591 }
2592
2593 unsigned src_number = 2;
2594
2595 if (ir->coordinate != NULL) {
2596 instr->coord_components = ir->coordinate->type->vector_elements;
2597 instr->src[src_number].src =
2598 nir_src_for_ssa(evaluate_rvalue(ir->coordinate));
2599 instr->src[src_number].src_type = nir_tex_src_coord;
2600 src_number++;
2601 }
2602
2603 if (ir->projector != NULL) {
2604 instr->src[src_number].src =
2605 nir_src_for_ssa(evaluate_rvalue(ir->projector));
2606 instr->src[src_number].src_type = nir_tex_src_projector;
2607 src_number++;
2608 }
2609
2610 if (ir->shadow_comparator != NULL) {
2611 instr->src[src_number].src =
2612 nir_src_for_ssa(evaluate_rvalue(ir->shadow_comparator));
2613 instr->src[src_number].src_type = nir_tex_src_comparator;
2614 src_number++;
2615 }
2616
2617 if (ir->offset != NULL) {
2618 if (ir->offset->type->is_array()) {
2619 for (int i = 0; i < ir->offset->type->array_size(); i++) {
2620 const ir_constant *c =
2621 ir->offset->as_constant()->get_array_element(i);
2622
2623 for (unsigned j = 0; j < 2; ++j) {
2624 int val = c->get_int_component(j);
2625 assert(val <= 31 && val >= -32);
2626 instr->tg4_offsets[i][j] = val;
2627 }
2628 }
2629 } else {
2630 assert(ir->offset->type->is_vector() || ir->offset->type->is_scalar());
2631
2632 instr->src[src_number].src =
2633 nir_src_for_ssa(evaluate_rvalue(ir->offset));
2634 instr->src[src_number].src_type = nir_tex_src_offset;
2635 src_number++;
2636 }
2637 }
2638
2639 switch (ir->op) {
2640 case ir_txb:
2641 instr->src[src_number].src =
2642 nir_src_for_ssa(evaluate_rvalue(ir->lod_info.bias));
2643 instr->src[src_number].src_type = nir_tex_src_bias;
2644 src_number++;
2645 break;
2646
2647 case ir_txl:
2648 case ir_txf:
2649 case ir_txs:
2650 if (ir->lod_info.lod != NULL) {
2651 instr->src[src_number].src =
2652 nir_src_for_ssa(evaluate_rvalue(ir->lod_info.lod));
2653 instr->src[src_number].src_type = nir_tex_src_lod;
2654 src_number++;
2655 }
2656 break;
2657
2658 case ir_txd:
2659 instr->src[src_number].src =
2660 nir_src_for_ssa(evaluate_rvalue(ir->lod_info.grad.dPdx));
2661 instr->src[src_number].src_type = nir_tex_src_ddx;
2662 src_number++;
2663 instr->src[src_number].src =
2664 nir_src_for_ssa(evaluate_rvalue(ir->lod_info.grad.dPdy));
2665 instr->src[src_number].src_type = nir_tex_src_ddy;
2666 src_number++;
2667 break;
2668
2669 case ir_txf_ms:
2670 instr->src[src_number].src =
2671 nir_src_for_ssa(evaluate_rvalue(ir->lod_info.sample_index));
2672 instr->src[src_number].src_type = nir_tex_src_ms_index;
2673 src_number++;
2674 break;
2675
2676 case ir_tg4:
2677 instr->component = ir->lod_info.component->as_constant()->value.u[0];
2678 break;
2679
2680 default:
2681 break;
2682 }
2683
2684 assert(src_number == num_srcs);
2685
2686 unsigned bit_size = glsl_get_bit_size(ir->type);
2687 add_instr(&instr->instr, nir_tex_instr_dest_size(instr), bit_size);
2688 }
2689
2690 void
2691 nir_visitor::visit(ir_constant *ir)
2692 {
2693 /*
2694 * We don't know if this variable is an array or struct that gets
2695 * dereferenced, so do the safe thing an make it a variable with a
2696 * constant initializer and return a dereference.
2697 */
2698
2699 nir_variable *var =
2700 nir_local_variable_create(this->impl, ir->type, "const_temp");
2701 var->data.read_only = true;
2702 var->constant_initializer = constant_copy(ir, var);
2703
2704 this->deref = nir_build_deref_var(&b, var);
2705 }
2706
2707 void
2708 nir_visitor::visit(ir_dereference_variable *ir)
2709 {
2710 if (ir->variable_referenced()->data.mode == ir_var_function_out) {
2711 unsigned i = (sig->return_type != glsl_type::void_type) ? 1 : 0;
2712
2713 foreach_in_list(ir_variable, param, &sig->parameters) {
2714 if (param == ir->variable_referenced()) {
2715 break;
2716 }
2717 i++;
2718 }
2719
2720 this->deref = nir_build_deref_cast(&b, nir_load_param(&b, i),
2721 nir_var_function_temp, ir->type, 0);
2722 return;
2723 }
2724
2725 assert(ir->variable_referenced()->data.mode != ir_var_function_inout);
2726
2727 struct hash_entry *entry =
2728 _mesa_hash_table_search(this->var_table, ir->var);
2729 assert(entry);
2730 nir_variable *var = (nir_variable *) entry->data;
2731
2732 this->deref = nir_build_deref_var(&b, var);
2733 }
2734
2735 void
2736 nir_visitor::visit(ir_dereference_record *ir)
2737 {
2738 ir->record->accept(this);
2739
2740 int field_index = ir->field_idx;
2741 assert(field_index >= 0);
2742
2743 this->deref = nir_build_deref_struct(&b, this->deref, field_index);
2744 }
2745
2746 void
2747 nir_visitor::visit(ir_dereference_array *ir)
2748 {
2749 nir_ssa_def *index = evaluate_rvalue(ir->array_index);
2750
2751 ir->array->accept(this);
2752
2753 this->deref = nir_build_deref_array(&b, this->deref, index);
2754 }
2755
2756 void
2757 nir_visitor::visit(ir_barrier *)
2758 {
2759 if (shader->info.stage == MESA_SHADER_COMPUTE) {
2760 nir_intrinsic_instr *shared_barrier =
2761 nir_intrinsic_instr_create(this->shader,
2762 nir_intrinsic_memory_barrier_shared);
2763 nir_builder_instr_insert(&b, &shared_barrier->instr);
2764 } else if (shader->info.stage == MESA_SHADER_TESS_CTRL) {
2765 nir_intrinsic_instr *patch_barrier =
2766 nir_intrinsic_instr_create(this->shader,
2767 nir_intrinsic_memory_barrier_tcs_patch);
2768 nir_builder_instr_insert(&b, &patch_barrier->instr);
2769 }
2770
2771 nir_intrinsic_instr *instr =
2772 nir_intrinsic_instr_create(this->shader, nir_intrinsic_control_barrier);
2773 nir_builder_instr_insert(&b, &instr->instr);
2774 }
2775
2776 nir_shader *
2777 glsl_float64_funcs_to_nir(struct gl_context *ctx,
2778 const nir_shader_compiler_options *options)
2779 {
2780 /* We pretend it's a vertex shader. Ultimately, the stage shouldn't
2781 * matter because we're not optimizing anything here.
2782 */
2783 struct gl_shader *sh = _mesa_new_shader(-1, MESA_SHADER_VERTEX);
2784 sh->Source = float64_source;
2785 sh->CompileStatus = COMPILE_FAILURE;
2786 _mesa_glsl_compile_shader(ctx, sh, false, false, true);
2787
2788 if (!sh->CompileStatus) {
2789 if (sh->InfoLog) {
2790 _mesa_problem(ctx,
2791 "fp64 software impl compile failed:\n%s\nsource:\n%s\n",
2792 sh->InfoLog, float64_source);
2793 }
2794 return NULL;
2795 }
2796
2797 nir_shader *nir = nir_shader_create(NULL, MESA_SHADER_VERTEX, options, NULL);
2798
2799 nir_visitor v1(ctx, nir);
2800 nir_function_visitor v2(&v1);
2801 v2.run(sh->ir);
2802 visit_exec_list(sh->ir, &v1);
2803
2804 /* _mesa_delete_shader will try to free sh->Source but it's static const */
2805 sh->Source = NULL;
2806 _mesa_delete_shader(ctx, sh);
2807
2808 nir_validate_shader(nir, "float64_funcs_to_nir");
2809
2810 NIR_PASS_V(nir, nir_lower_variable_initializers, nir_var_function_temp);
2811 NIR_PASS_V(nir, nir_lower_returns);
2812 NIR_PASS_V(nir, nir_inline_functions);
2813 NIR_PASS_V(nir, nir_opt_deref);
2814
2815 /* Do some optimizations to clean up the shader now. By optimizing the
2816 * functions in the library, we avoid having to re-do that work every
2817 * time we inline a copy of a function. Reducing basic blocks also helps
2818 * with compile times.
2819 */
2820 NIR_PASS_V(nir, nir_lower_vars_to_ssa);
2821 NIR_PASS_V(nir, nir_copy_prop);
2822 NIR_PASS_V(nir, nir_opt_dce);
2823 NIR_PASS_V(nir, nir_opt_cse);
2824 NIR_PASS_V(nir, nir_opt_gcm, true);
2825 NIR_PASS_V(nir, nir_opt_peephole_select, 1, false, false);
2826 NIR_PASS_V(nir, nir_opt_dce);
2827
2828 return nir;
2829 }