spirv: Add a vtn_push_nir_ssa helper
[mesa.git] / src / compiler / spirv / vtn_glsl450.c
1 /*
2 * Copyright © 2015 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 * Jason Ekstrand (jason@jlekstrand.net)
25 *
26 */
27
28 #include <math.h>
29
30 #include "nir/nir_builtin_builder.h"
31
32 #include "vtn_private.h"
33 #include "GLSL.std.450.h"
34
35 #define M_PIf ((float) M_PI)
36 #define M_PI_2f ((float) M_PI_2)
37 #define M_PI_4f ((float) M_PI_4)
38
39 static nir_ssa_def *
40 build_mat2_det(nir_builder *b, nir_ssa_def *col[2])
41 {
42 unsigned swiz[2] = {1, 0 };
43 nir_ssa_def *p = nir_fmul(b, col[0], nir_swizzle(b, col[1], swiz, 2));
44 return nir_fsub(b, nir_channel(b, p, 0), nir_channel(b, p, 1));
45 }
46
47 static nir_ssa_def *
48 build_mat3_det(nir_builder *b, nir_ssa_def *col[3])
49 {
50 unsigned yzx[3] = {1, 2, 0 };
51 unsigned zxy[3] = {2, 0, 1 };
52
53 nir_ssa_def *prod0 =
54 nir_fmul(b, col[0],
55 nir_fmul(b, nir_swizzle(b, col[1], yzx, 3),
56 nir_swizzle(b, col[2], zxy, 3)));
57 nir_ssa_def *prod1 =
58 nir_fmul(b, col[0],
59 nir_fmul(b, nir_swizzle(b, col[1], zxy, 3),
60 nir_swizzle(b, col[2], yzx, 3)));
61
62 nir_ssa_def *diff = nir_fsub(b, prod0, prod1);
63
64 return nir_fadd(b, nir_channel(b, diff, 0),
65 nir_fadd(b, nir_channel(b, diff, 1),
66 nir_channel(b, diff, 2)));
67 }
68
69 static nir_ssa_def *
70 build_mat4_det(nir_builder *b, nir_ssa_def **col)
71 {
72 nir_ssa_def *subdet[4];
73 for (unsigned i = 0; i < 4; i++) {
74 unsigned swiz[3];
75 for (unsigned j = 0; j < 3; j++)
76 swiz[j] = j + (j >= i);
77
78 nir_ssa_def *subcol[3];
79 subcol[0] = nir_swizzle(b, col[1], swiz, 3);
80 subcol[1] = nir_swizzle(b, col[2], swiz, 3);
81 subcol[2] = nir_swizzle(b, col[3], swiz, 3);
82
83 subdet[i] = build_mat3_det(b, subcol);
84 }
85
86 nir_ssa_def *prod = nir_fmul(b, col[0], nir_vec(b, subdet, 4));
87
88 return nir_fadd(b, nir_fsub(b, nir_channel(b, prod, 0),
89 nir_channel(b, prod, 1)),
90 nir_fsub(b, nir_channel(b, prod, 2),
91 nir_channel(b, prod, 3)));
92 }
93
94 static nir_ssa_def *
95 build_mat_det(struct vtn_builder *b, struct vtn_ssa_value *src)
96 {
97 unsigned size = glsl_get_vector_elements(src->type);
98
99 nir_ssa_def *cols[4];
100 for (unsigned i = 0; i < size; i++)
101 cols[i] = src->elems[i]->def;
102
103 switch(size) {
104 case 2: return build_mat2_det(&b->nb, cols);
105 case 3: return build_mat3_det(&b->nb, cols);
106 case 4: return build_mat4_det(&b->nb, cols);
107 default:
108 vtn_fail("Invalid matrix size");
109 }
110 }
111
112 /* Computes the determinate of the submatrix given by taking src and
113 * removing the specified row and column.
114 */
115 static nir_ssa_def *
116 build_mat_subdet(struct nir_builder *b, struct vtn_ssa_value *src,
117 unsigned size, unsigned row, unsigned col)
118 {
119 assert(row < size && col < size);
120 if (size == 2) {
121 return nir_channel(b, src->elems[1 - col]->def, 1 - row);
122 } else {
123 /* Swizzle to get all but the specified row */
124 unsigned swiz[NIR_MAX_VEC_COMPONENTS] = {0};
125 for (unsigned j = 0; j < 3; j++)
126 swiz[j] = j + (j >= row);
127
128 /* Grab all but the specified column */
129 nir_ssa_def *subcol[3];
130 for (unsigned j = 0; j < size; j++) {
131 if (j != col) {
132 subcol[j - (j > col)] = nir_swizzle(b, src->elems[j]->def,
133 swiz, size - 1);
134 }
135 }
136
137 if (size == 3) {
138 return build_mat2_det(b, subcol);
139 } else {
140 assert(size == 4);
141 return build_mat3_det(b, subcol);
142 }
143 }
144 }
145
146 static struct vtn_ssa_value *
147 matrix_inverse(struct vtn_builder *b, struct vtn_ssa_value *src)
148 {
149 nir_ssa_def *adj_col[4];
150 unsigned size = glsl_get_vector_elements(src->type);
151
152 /* Build up an adjugate matrix */
153 for (unsigned c = 0; c < size; c++) {
154 nir_ssa_def *elem[4];
155 for (unsigned r = 0; r < size; r++) {
156 elem[r] = build_mat_subdet(&b->nb, src, size, c, r);
157
158 if ((r + c) % 2)
159 elem[r] = nir_fneg(&b->nb, elem[r]);
160 }
161
162 adj_col[c] = nir_vec(&b->nb, elem, size);
163 }
164
165 nir_ssa_def *det_inv = nir_frcp(&b->nb, build_mat_det(b, src));
166
167 struct vtn_ssa_value *val = vtn_create_ssa_value(b, src->type);
168 for (unsigned i = 0; i < size; i++)
169 val->elems[i]->def = nir_fmul(&b->nb, adj_col[i], det_inv);
170
171 return val;
172 }
173
174 /**
175 * Approximate asin(x) by the piecewise formula:
176 * for |x| < 0.5, asin~(x) = x * (1 + x²(pS0 + x²(pS1 + x²*pS2)) / (1 + x²*qS1))
177 * for |x| ≥ 0.5, asin~(x) = sign(x) * (π/2 - sqrt(1 - |x|) * (π/2 + |x|(π/4 - 1 + |x|(p0 + |x|p1))))
178 *
179 * The latter is correct to first order at x=0 and x=±1 regardless of the p
180 * coefficients but can be made second-order correct at both ends by selecting
181 * the fit coefficients appropriately. Different p coefficients can be used
182 * in the asin and acos implementation to minimize some relative error metric
183 * in each case.
184 */
185 static nir_ssa_def *
186 build_asin(nir_builder *b, nir_ssa_def *x, float p0, float p1, bool piecewise)
187 {
188 if (x->bit_size == 16) {
189 /* The polynomial approximation isn't precise enough to meet half-float
190 * precision requirements. Alternatively, we could implement this using
191 * the formula:
192 *
193 * asin(x) = atan2(x, sqrt(1 - x*x))
194 *
195 * But that is very expensive, so instead we just do the polynomial
196 * approximation in 32-bit math and then we convert the result back to
197 * 16-bit.
198 */
199 return nir_f2f16(b, build_asin(b, nir_f2f32(b, x), p0, p1, piecewise));
200 }
201 nir_ssa_def *one = nir_imm_floatN_t(b, 1.0f, x->bit_size);
202 nir_ssa_def *half = nir_imm_floatN_t(b, 0.5f, x->bit_size);
203 nir_ssa_def *abs_x = nir_fabs(b, x);
204
205 nir_ssa_def *p0_plus_xp1 = nir_fadd_imm(b, nir_fmul_imm(b, abs_x, p1), p0);
206
207 nir_ssa_def *expr_tail =
208 nir_fadd_imm(b, nir_fmul(b, abs_x,
209 nir_fadd_imm(b, nir_fmul(b, abs_x,
210 p0_plus_xp1),
211 M_PI_4f - 1.0f)),
212 M_PI_2f);
213
214 nir_ssa_def *result0 = nir_fmul(b, nir_fsign(b, x),
215 nir_fsub(b, nir_imm_floatN_t(b, M_PI_2f, x->bit_size),
216 nir_fmul(b, nir_fsqrt(b, nir_fsub(b, one, abs_x)),
217 expr_tail)));
218 if (piecewise) {
219 /* approximation for |x| < 0.5 */
220 const float pS0 = 1.6666586697e-01f;
221 const float pS1 = -4.2743422091e-02f;
222 const float pS2 = -8.6563630030e-03f;
223 const float qS1 = -7.0662963390e-01f;
224
225 nir_ssa_def *x2 = nir_fmul(b, x, x);
226 nir_ssa_def *p = nir_fmul(b,
227 x2,
228 nir_fadd_imm(b,
229 nir_fmul(b,
230 x2,
231 nir_fadd_imm(b, nir_fmul_imm(b, x2, pS2),
232 pS1)),
233 pS0));
234
235 nir_ssa_def *q = nir_fadd(b, one, nir_fmul_imm(b, x2, qS1));
236 nir_ssa_def *result1 = nir_fadd(b, x, nir_fmul(b, x, nir_fdiv(b, p, q)));
237 return nir_bcsel(b, nir_flt(b, abs_x, half), result1, result0);
238 } else {
239 return result0;
240 }
241 }
242
243 static nir_op
244 vtn_nir_alu_op_for_spirv_glsl_opcode(struct vtn_builder *b,
245 enum GLSLstd450 opcode,
246 unsigned execution_mode,
247 bool *exact)
248 {
249 *exact = false;
250 switch (opcode) {
251 case GLSLstd450Round: return nir_op_fround_even;
252 case GLSLstd450RoundEven: return nir_op_fround_even;
253 case GLSLstd450Trunc: return nir_op_ftrunc;
254 case GLSLstd450FAbs: return nir_op_fabs;
255 case GLSLstd450SAbs: return nir_op_iabs;
256 case GLSLstd450FSign: return nir_op_fsign;
257 case GLSLstd450SSign: return nir_op_isign;
258 case GLSLstd450Floor: return nir_op_ffloor;
259 case GLSLstd450Ceil: return nir_op_fceil;
260 case GLSLstd450Fract: return nir_op_ffract;
261 case GLSLstd450Sin: return nir_op_fsin;
262 case GLSLstd450Cos: return nir_op_fcos;
263 case GLSLstd450Pow: return nir_op_fpow;
264 case GLSLstd450Exp2: return nir_op_fexp2;
265 case GLSLstd450Log2: return nir_op_flog2;
266 case GLSLstd450Sqrt: return nir_op_fsqrt;
267 case GLSLstd450InverseSqrt: return nir_op_frsq;
268 case GLSLstd450NMin: *exact = true; return nir_op_fmin;
269 case GLSLstd450FMin: return nir_op_fmin;
270 case GLSLstd450UMin: return nir_op_umin;
271 case GLSLstd450SMin: return nir_op_imin;
272 case GLSLstd450NMax: *exact = true; return nir_op_fmax;
273 case GLSLstd450FMax: return nir_op_fmax;
274 case GLSLstd450UMax: return nir_op_umax;
275 case GLSLstd450SMax: return nir_op_imax;
276 case GLSLstd450FMix: return nir_op_flrp;
277 case GLSLstd450Fma: return nir_op_ffma;
278 case GLSLstd450Ldexp: return nir_op_ldexp;
279 case GLSLstd450FindILsb: return nir_op_find_lsb;
280 case GLSLstd450FindSMsb: return nir_op_ifind_msb;
281 case GLSLstd450FindUMsb: return nir_op_ufind_msb;
282
283 /* Packing/Unpacking functions */
284 case GLSLstd450PackSnorm4x8: return nir_op_pack_snorm_4x8;
285 case GLSLstd450PackUnorm4x8: return nir_op_pack_unorm_4x8;
286 case GLSLstd450PackSnorm2x16: return nir_op_pack_snorm_2x16;
287 case GLSLstd450PackUnorm2x16: return nir_op_pack_unorm_2x16;
288 case GLSLstd450PackHalf2x16: return nir_op_pack_half_2x16;
289 case GLSLstd450PackDouble2x32: return nir_op_pack_64_2x32;
290 case GLSLstd450UnpackSnorm4x8: return nir_op_unpack_snorm_4x8;
291 case GLSLstd450UnpackUnorm4x8: return nir_op_unpack_unorm_4x8;
292 case GLSLstd450UnpackSnorm2x16: return nir_op_unpack_snorm_2x16;
293 case GLSLstd450UnpackUnorm2x16: return nir_op_unpack_unorm_2x16;
294 case GLSLstd450UnpackHalf2x16:
295 if (execution_mode & FLOAT_CONTROLS_DENORM_FLUSH_TO_ZERO_FP16)
296 return nir_op_unpack_half_2x16_flush_to_zero;
297 else
298 return nir_op_unpack_half_2x16;
299 case GLSLstd450UnpackDouble2x32: return nir_op_unpack_64_2x32;
300
301 default:
302 vtn_fail("No NIR equivalent");
303 }
304 }
305
306 #define NIR_IMM_FP(n, v) (nir_imm_floatN_t(n, v, src[0]->bit_size))
307
308 static void
309 handle_glsl450_alu(struct vtn_builder *b, enum GLSLstd450 entrypoint,
310 const uint32_t *w, unsigned count)
311 {
312 struct nir_builder *nb = &b->nb;
313 const struct glsl_type *dest_type = vtn_get_type(b, w[1])->type;
314 struct vtn_value *val = vtn_push_value(b, w[2], vtn_value_type_ssa);
315 val->ssa = vtn_create_ssa_value(b, dest_type);
316
317 /* Collect the various SSA sources */
318 unsigned num_inputs = count - 5;
319 nir_ssa_def *src[3] = { NULL, };
320 for (unsigned i = 0; i < num_inputs; i++) {
321 /* These are handled specially below */
322 if (vtn_untyped_value(b, w[i + 5])->value_type == vtn_value_type_pointer)
323 continue;
324
325 src[i] = vtn_ssa_value(b, w[i + 5])->def;
326 }
327
328 switch (entrypoint) {
329 case GLSLstd450Radians:
330 val->ssa->def = nir_radians(nb, src[0]);
331 return;
332 case GLSLstd450Degrees:
333 val->ssa->def = nir_degrees(nb, src[0]);
334 return;
335 case GLSLstd450Tan:
336 val->ssa->def = nir_ftan(nb, src[0]);
337 return;
338
339 case GLSLstd450Modf: {
340 nir_ssa_def *sign = nir_fsign(nb, src[0]);
341 nir_ssa_def *abs = nir_fabs(nb, src[0]);
342 val->ssa->def = nir_fmul(nb, sign, nir_ffract(nb, abs));
343 nir_store_deref(nb, vtn_nir_deref(b, w[6]),
344 nir_fmul(nb, sign, nir_ffloor(nb, abs)), 0xf);
345 return;
346 }
347
348 case GLSLstd450ModfStruct: {
349 nir_ssa_def *sign = nir_fsign(nb, src[0]);
350 nir_ssa_def *abs = nir_fabs(nb, src[0]);
351 vtn_assert(glsl_type_is_struct_or_ifc(val->ssa->type));
352 val->ssa->elems[0]->def = nir_fmul(nb, sign, nir_ffract(nb, abs));
353 val->ssa->elems[1]->def = nir_fmul(nb, sign, nir_ffloor(nb, abs));
354 return;
355 }
356
357 case GLSLstd450Step:
358 val->ssa->def = nir_sge(nb, src[1], src[0]);
359 return;
360
361 case GLSLstd450Length:
362 val->ssa->def = nir_fast_length(nb, src[0]);
363 return;
364 case GLSLstd450Distance:
365 val->ssa->def = nir_fast_distance(nb, src[0], src[1]);
366 return;
367 case GLSLstd450Normalize:
368 val->ssa->def = nir_fast_normalize(nb, src[0]);
369 return;
370
371 case GLSLstd450Exp:
372 val->ssa->def = nir_fexp(nb, src[0]);
373 return;
374
375 case GLSLstd450Log:
376 val->ssa->def = nir_flog(nb, src[0]);
377 return;
378
379 case GLSLstd450FClamp:
380 val->ssa->def = nir_fclamp(nb, src[0], src[1], src[2]);
381 return;
382 case GLSLstd450NClamp:
383 nb->exact = true;
384 val->ssa->def = nir_fclamp(nb, src[0], src[1], src[2]);
385 nb->exact = false;
386 return;
387 case GLSLstd450UClamp:
388 val->ssa->def = nir_uclamp(nb, src[0], src[1], src[2]);
389 return;
390 case GLSLstd450SClamp:
391 val->ssa->def = nir_iclamp(nb, src[0], src[1], src[2]);
392 return;
393
394 case GLSLstd450Cross: {
395 val->ssa->def = nir_cross3(nb, src[0], src[1]);
396 return;
397 }
398
399 case GLSLstd450SmoothStep: {
400 val->ssa->def = nir_smoothstep(nb, src[0], src[1], src[2]);
401 return;
402 }
403
404 case GLSLstd450FaceForward:
405 val->ssa->def =
406 nir_bcsel(nb, nir_flt(nb, nir_fdot(nb, src[2], src[1]),
407 NIR_IMM_FP(nb, 0.0)),
408 src[0], nir_fneg(nb, src[0]));
409 return;
410
411 case GLSLstd450Reflect:
412 /* I - 2 * dot(N, I) * N */
413 val->ssa->def =
414 nir_fsub(nb, src[0], nir_fmul(nb, NIR_IMM_FP(nb, 2.0),
415 nir_fmul(nb, nir_fdot(nb, src[0], src[1]),
416 src[1])));
417 return;
418
419 case GLSLstd450Refract: {
420 nir_ssa_def *I = src[0];
421 nir_ssa_def *N = src[1];
422 nir_ssa_def *eta = src[2];
423 nir_ssa_def *n_dot_i = nir_fdot(nb, N, I);
424 nir_ssa_def *one = NIR_IMM_FP(nb, 1.0);
425 nir_ssa_def *zero = NIR_IMM_FP(nb, 0.0);
426 /* According to the SPIR-V and GLSL specs, eta is always a float
427 * regardless of the type of the other operands. However in practice it
428 * seems that if you try to pass it a float then glslang will just
429 * promote it to a double and generate invalid SPIR-V. In order to
430 * support a hypothetical fixed version of glslang we’ll promote eta to
431 * double if the other operands are double also.
432 */
433 if (I->bit_size != eta->bit_size) {
434 nir_op conversion_op =
435 nir_type_conversion_op(nir_type_float | eta->bit_size,
436 nir_type_float | I->bit_size,
437 nir_rounding_mode_undef);
438 eta = nir_build_alu(nb, conversion_op, eta, NULL, NULL, NULL);
439 }
440 /* k = 1.0 - eta * eta * (1.0 - dot(N, I) * dot(N, I)) */
441 nir_ssa_def *k =
442 nir_fsub(nb, one, nir_fmul(nb, eta, nir_fmul(nb, eta,
443 nir_fsub(nb, one, nir_fmul(nb, n_dot_i, n_dot_i)))));
444 nir_ssa_def *result =
445 nir_fsub(nb, nir_fmul(nb, eta, I),
446 nir_fmul(nb, nir_fadd(nb, nir_fmul(nb, eta, n_dot_i),
447 nir_fsqrt(nb, k)), N));
448 /* XXX: bcsel, or if statement? */
449 val->ssa->def = nir_bcsel(nb, nir_flt(nb, k, zero), zero, result);
450 return;
451 }
452
453 case GLSLstd450Sinh:
454 /* 0.5 * (e^x - e^(-x)) */
455 val->ssa->def =
456 nir_fmul_imm(nb, nir_fsub(nb, nir_fexp(nb, src[0]),
457 nir_fexp(nb, nir_fneg(nb, src[0]))),
458 0.5f);
459 return;
460
461 case GLSLstd450Cosh:
462 /* 0.5 * (e^x + e^(-x)) */
463 val->ssa->def =
464 nir_fmul_imm(nb, nir_fadd(nb, nir_fexp(nb, src[0]),
465 nir_fexp(nb, nir_fneg(nb, src[0]))),
466 0.5f);
467 return;
468
469 case GLSLstd450Tanh: {
470 /* tanh(x) := (e^x - e^(-x)) / (e^x + e^(-x))
471 *
472 * We clamp x to [-10, +10] to avoid precision problems. When x > 10,
473 * e^x dominates the sum, e^(-x) is lost and tanh(x) is 1.0 for 32 bit
474 * floating point.
475 *
476 * For 16-bit precision this we clamp x to [-4.2, +4.2].
477 */
478 const uint32_t bit_size = src[0]->bit_size;
479 const double clamped_x = bit_size > 16 ? 10.0 : 4.2;
480 nir_ssa_def *x = nir_fclamp(nb, src[0],
481 nir_imm_floatN_t(nb, -clamped_x, bit_size),
482 nir_imm_floatN_t(nb, clamped_x, bit_size));
483 val->ssa->def =
484 nir_fdiv(nb, nir_fsub(nb, nir_fexp(nb, x),
485 nir_fexp(nb, nir_fneg(nb, x))),
486 nir_fadd(nb, nir_fexp(nb, x),
487 nir_fexp(nb, nir_fneg(nb, x))));
488 return;
489 }
490
491 case GLSLstd450Asinh:
492 val->ssa->def = nir_fmul(nb, nir_fsign(nb, src[0]),
493 nir_flog(nb, nir_fadd(nb, nir_fabs(nb, src[0]),
494 nir_fsqrt(nb, nir_fadd_imm(nb, nir_fmul(nb, src[0], src[0]),
495 1.0f)))));
496 return;
497 case GLSLstd450Acosh:
498 val->ssa->def = nir_flog(nb, nir_fadd(nb, src[0],
499 nir_fsqrt(nb, nir_fadd_imm(nb, nir_fmul(nb, src[0], src[0]),
500 -1.0f))));
501 return;
502 case GLSLstd450Atanh: {
503 nir_ssa_def *one = nir_imm_floatN_t(nb, 1.0, src[0]->bit_size);
504 val->ssa->def =
505 nir_fmul_imm(nb, nir_flog(nb, nir_fdiv(nb, nir_fadd(nb, src[0], one),
506 nir_fsub(nb, one, src[0]))),
507 0.5f);
508 return;
509 }
510
511 case GLSLstd450Asin:
512 val->ssa->def = build_asin(nb, src[0], 0.086566724, -0.03102955, true);
513 return;
514
515 case GLSLstd450Acos:
516 val->ssa->def =
517 nir_fsub(nb, nir_imm_floatN_t(nb, M_PI_2f, src[0]->bit_size),
518 build_asin(nb, src[0], 0.08132463, -0.02363318, false));
519 return;
520
521 case GLSLstd450Atan:
522 val->ssa->def = nir_atan(nb, src[0]);
523 return;
524
525 case GLSLstd450Atan2:
526 val->ssa->def = nir_atan2(nb, src[0], src[1]);
527 return;
528
529 case GLSLstd450Frexp: {
530 nir_ssa_def *exponent = nir_frexp_exp(nb, src[0]);
531 val->ssa->def = nir_frexp_sig(nb, src[0]);
532 nir_store_deref(nb, vtn_nir_deref(b, w[6]), exponent, 0xf);
533 return;
534 }
535
536 case GLSLstd450FrexpStruct: {
537 vtn_assert(glsl_type_is_struct_or_ifc(val->ssa->type));
538 val->ssa->elems[0]->def = nir_frexp_sig(nb, src[0]);
539 val->ssa->elems[1]->def = nir_frexp_exp(nb, src[0]);
540 return;
541 }
542
543 default: {
544 unsigned execution_mode =
545 b->shader->info.float_controls_execution_mode;
546 bool exact;
547 nir_op op = vtn_nir_alu_op_for_spirv_glsl_opcode(b, entrypoint, execution_mode, &exact);
548 b->nb.exact = exact;
549 val->ssa->def = nir_build_alu(&b->nb, op, src[0], src[1], src[2], NULL);
550 b->nb.exact = false;
551 return;
552 }
553 }
554 }
555
556 static void
557 handle_glsl450_interpolation(struct vtn_builder *b, enum GLSLstd450 opcode,
558 const uint32_t *w, unsigned count)
559 {
560 nir_intrinsic_op op;
561 switch (opcode) {
562 case GLSLstd450InterpolateAtCentroid:
563 op = nir_intrinsic_interp_deref_at_centroid;
564 break;
565 case GLSLstd450InterpolateAtSample:
566 op = nir_intrinsic_interp_deref_at_sample;
567 break;
568 case GLSLstd450InterpolateAtOffset:
569 op = nir_intrinsic_interp_deref_at_offset;
570 break;
571 default:
572 vtn_fail("Invalid opcode");
573 }
574
575 nir_intrinsic_instr *intrin = nir_intrinsic_instr_create(b->nb.shader, op);
576
577 struct vtn_pointer *ptr =
578 vtn_value(b, w[5], vtn_value_type_pointer)->pointer;
579 nir_deref_instr *deref = vtn_pointer_to_deref(b, ptr);
580
581 /* If the value we are interpolating has an index into a vector then
582 * interpolate the vector and index the result of that instead. This is
583 * necessary because the index will get generated as a series of nir_bcsel
584 * instructions so it would no longer be an input variable.
585 */
586 const bool vec_array_deref = deref->deref_type == nir_deref_type_array &&
587 glsl_type_is_vector(nir_deref_instr_parent(deref)->type);
588
589 nir_deref_instr *vec_deref = NULL;
590 if (vec_array_deref) {
591 vec_deref = deref;
592 deref = nir_deref_instr_parent(deref);
593 }
594 intrin->src[0] = nir_src_for_ssa(&deref->dest.ssa);
595
596 switch (opcode) {
597 case GLSLstd450InterpolateAtCentroid:
598 break;
599 case GLSLstd450InterpolateAtSample:
600 case GLSLstd450InterpolateAtOffset:
601 intrin->src[1] = nir_src_for_ssa(vtn_ssa_value(b, w[6])->def);
602 break;
603 default:
604 vtn_fail("Invalid opcode");
605 }
606
607 intrin->num_components = glsl_get_vector_elements(deref->type);
608 nir_ssa_dest_init(&intrin->instr, &intrin->dest,
609 glsl_get_vector_elements(deref->type),
610 glsl_get_bit_size(deref->type), NULL);
611
612 nir_builder_instr_insert(&b->nb, &intrin->instr);
613
614 nir_ssa_def *def = &intrin->dest.ssa;
615 if (vec_array_deref)
616 def = nir_vector_extract(&b->nb, def, vec_deref->arr.index.ssa);
617
618 vtn_push_nir_ssa(b, w[2], def);
619 }
620
621 bool
622 vtn_handle_glsl450_instruction(struct vtn_builder *b, SpvOp ext_opcode,
623 const uint32_t *w, unsigned count)
624 {
625 switch ((enum GLSLstd450)ext_opcode) {
626 case GLSLstd450Determinant: {
627 vtn_push_nir_ssa(b, w[2], build_mat_det(b, vtn_ssa_value(b, w[5])));
628 break;
629 }
630
631 case GLSLstd450MatrixInverse: {
632 struct vtn_value *val = vtn_push_value(b, w[2], vtn_value_type_ssa);
633 val->ssa = matrix_inverse(b, vtn_ssa_value(b, w[5]));
634 break;
635 }
636
637 case GLSLstd450InterpolateAtCentroid:
638 case GLSLstd450InterpolateAtSample:
639 case GLSLstd450InterpolateAtOffset:
640 handle_glsl450_interpolation(b, (enum GLSLstd450)ext_opcode, w, count);
641 break;
642
643 default:
644 handle_glsl450_alu(b, (enum GLSLstd450)ext_opcode, w, count);
645 }
646
647 return true;
648 }