11#ifndef EIGEN_CORE_ARCH_AVX512_GEMM_KERNEL_H
12#define EIGEN_CORE_ARCH_AVX512_GEMM_KERNEL_H
24#include "../../InternalHeaderCheck.h"
26#if !defined(EIGEN_USE_AVX512_GEMM_KERNELS)
27#define EIGEN_USE_AVX512_GEMM_KERNELS 1
30#define SECOND_FETCH (32)
31#if (EIGEN_COMP_GNUC_STRICT != 0) && !defined(EIGEN_ARCH_AVX512_GEMM_KERNEL_USE_LESS_A_REGS)
34#define EIGEN_ARCH_AVX512_GEMM_KERNEL_USE_LESS_A_REGS
40#if EIGEN_USE_AVX512_GEMM_KERNELS
42template <
typename Scalar,
bool is_unit_inc>
44 using vec =
typename packet_traits<Scalar>::type;
45 using vec_ymm =
typename unpacket_traits<vec>::half;
46 using vec_xmm =
typename unpacket_traits<vec_ymm>::half;
47 using umask_t =
typename unpacket_traits<vec>::mask_t;
49 static constexpr bool is_f32 =
sizeof(Scalar) ==
sizeof(
float);
50 static constexpr bool is_f64 =
sizeof(Scalar) ==
sizeof(
double);
52#ifndef EIGEN_ARCH_AVX512_GEMM_KERNEL_USE_LESS_A_REGS
53 static constexpr bool use_less_a_regs = !is_unit_inc;
55 static constexpr bool use_less_a_regs =
true;
57#ifndef EIGEN_ARCH_AVX512_GEMM_KERNEL_USE_LESS_B_REGS
58 static constexpr bool use_less_b_regs = !is_unit_inc;
60 static constexpr bool use_less_b_regs =
true;
63 static constexpr int a_regs[] = {0, 1, 2, use_less_a_regs ? 0 : 3, use_less_a_regs ? 1 : 4, use_less_a_regs ? 2 : 5};
64 static constexpr int b_regs[] = {6, use_less_b_regs ? 6 : 7};
65 static constexpr int c_regs[] = {
66 8, 16, 24, 9, 17, 25, 10, 18, 26, 11, 19, 27, 12, 20, 28, 13, 21, 29, 14, 22, 30, 15, 23, 31,
69 static constexpr int alpha_load_reg = 0;
70 static constexpr int c_load_regs[] = {1, 2, 6};
72 static constexpr int a_shift = 128;
73 static constexpr int b_shift = 128;
75 static constexpr int nelems_in_cache_line = is_f32 ? 16 : 8;
76 static constexpr int a_prefetch_size = nelems_in_cache_line * 2;
77 static constexpr int b_prefetch_size = nelems_in_cache_line * 8;
84 const Index n, k, ldc;
94 const Index a_stride, b_stride;
95 const Index a_off, b_off;
97 EIGEN_ALWAYS_INLINE
void prefetch_a(
const Scalar* a_addr) {
98 _mm_prefetch((
char*)(a_prefetch_size + a_addr - a_shift), _MM_HINT_T0);
101 EIGEN_ALWAYS_INLINE
void prefetch_b(
const Scalar* b_addr) {
102 _mm_prefetch((
char*)(b_prefetch_size + b_addr - b_shift), _MM_HINT_T0);
105 EIGEN_ALWAYS_INLINE
void prefetch_x(
const Scalar* x_addr) { _mm_prefetch((
char*)(x_addr - a_shift), _MM_HINT_T2); }
107 EIGEN_ALWAYS_INLINE
void prefetch_c(
const Scalar* c_addr) {
108#if defined(__PRFCHW__) && __PRFCHW__ == 1
109 _m_prefetchw((
void*)c_addr);
111 _mm_prefetch((
char*)c_addr, _MM_HINT_T0);
115 template <
int nelems>
116 EIGEN_ALWAYS_INLINE
void a_load(vec& a_reg,
const Scalar* a_addr) {
117 switch (nelems *
sizeof(*a_addr) * 8) {
120 a_reg = ploadu<vec>(a_addr);
123 a_reg = ploadu<vec>(a_addr);
126 a_reg = ploadu<vec>(a_addr);
129 a_reg = preinterpret<vec>(_mm512_broadcast_f64x4(ploadu<Packet4d>(
reinterpret_cast<const double*
>(a_addr))));
132 a_reg = preinterpret<vec>(_mm512_broadcast_f32x4(ploadu<Packet4f>(
reinterpret_cast<const float*
>(a_addr))));
135 a_reg = preinterpret<vec>(pload1<Packet8d>(
reinterpret_cast<const double*
>(a_addr)));
138 a_reg = pload1<vec>(a_addr);
143 EIGEN_ALWAYS_INLINE
void b_load(vec& b_reg,
const Scalar* b_addr) { b_reg = pload1<vec>(b_addr); }
145 template <
int nelems>
146 EIGEN_ALWAYS_INLINE
void c_store(Scalar* mem, vec& src) {
147 EIGEN_IF_CONSTEXPR (is_unit_inc) {
148 switch (nelems *
sizeof(*mem) * 8) {
160 pstoreu(mem, preinterpret<vec_ymm>(src));
163 pstoreu(mem, preinterpret<vec_xmm>(src));
166 pstorel(mem, preinterpret<vec_xmm>(src));
169 pstores(mem, preinterpret<vec_xmm>(src));
173 switch (nelems *
sizeof(*mem) * 8) {
176 pscatter(mem, src, inc);
179 pscatter(mem, src, inc);
182 pscatter(mem, src, inc);
185 pscatter(mem, src, inc, mask);
188 pscatter(mem, src, inc, mask);
191 pscatter(mem, src, inc, mask);
194 pscatter(mem, src, inc, mask);
200 template <
int nelems>
201 EIGEN_ALWAYS_INLINE
void vaddm(vec& dst,
const Scalar* mem, vec& src, vec& reg) {
202 EIGEN_IF_CONSTEXPR (is_unit_inc) {
203 switch (nelems *
sizeof(*mem) * 8) {
206 dst = padd(src, ploadu<vec>(mem));
209 dst = padd(src, ploadu<vec>(mem));
212 dst = padd(src, ploadu<vec>(mem));
215 dst = preinterpret<vec>(padd(preinterpret<vec_ymm>(src), ploadu<vec_ymm>(mem)));
218 dst = preinterpret<vec>(padd(preinterpret<vec_xmm>(src), ploadu<vec_xmm>(mem)));
221 dst = preinterpret<vec>(padd(preinterpret<vec_xmm>(src), ploadl<vec_xmm>(mem)));
224 dst = preinterpret<vec>(padds(preinterpret<vec_xmm>(src), ploads<vec_xmm>(mem)));
231 switch (nelems *
sizeof(*mem) * 8) {
234 reg = pgather<Scalar, vec>(mem, inc);
235 dst = padd(src, reg);
238 reg = pgather<Scalar, vec>(mem, inc);
239 dst = padd(src, reg);
242 reg = pgather<Scalar, vec>(mem, inc);
243 dst = padd(src, reg);
246 reg = preinterpret<vec>(pgather<Scalar, vec_ymm>(mem, inc));
247 dst = preinterpret<vec>(padd(preinterpret<vec_ymm>(src), preinterpret<vec_ymm>(reg)));
250 reg = preinterpret<vec>(pgather<Scalar, vec_xmm>(mem, inc));
251 dst = preinterpret<vec>(padd(preinterpret<vec_xmm>(src), preinterpret<vec_xmm>(reg)));
254 EIGEN_IF_CONSTEXPR (is_f32) {
255 reg = pgather(reg, mem, inc, mask);
256 dst = preinterpret<vec>(padd(preinterpret<vec_xmm>(src), preinterpret<vec_xmm>(reg)));
258 dst = preinterpret<vec>(padd(preinterpret<vec_xmm>(src), ploadl<vec_xmm>(mem)));
262 dst = preinterpret<vec>(padds(preinterpret<vec_xmm>(src), ploads<vec_xmm>(mem)));
268 EIGEN_STRONG_INLINE
void vfmadd(vec& dst,
const vec& src1,
const vec& src2) {
269 dst = pmadd(src1, src2, dst);
271#if (EIGEN_COMP_GNUC != 0) || (EIGEN_COMP_CLANG != 0)
273 __asm__(
"#" : [dst]
"+v"(dst) : [src1]
"%v"(src1), [src2]
"v"(src2));
277 template <
int nelems>
278 EIGEN_ALWAYS_INLINE
void vfmaddm(vec& dst,
const Scalar* mem, vec& src, vec& scale, vec& reg) {
279 EIGEN_IF_CONSTEXPR (is_unit_inc) {
280 switch (nelems *
sizeof(*mem) * 8) {
283 dst = pmadd(scale, src, ploadu<vec>(mem));
286 dst = pmadd(scale, src, ploadu<vec>(mem));
289 dst = pmadd(scale, src, ploadu<vec>(mem));
293 preinterpret<vec>(pmadd(preinterpret<vec_ymm>(scale), preinterpret<vec_ymm>(src), ploadu<vec_ymm>(mem)));
297 preinterpret<vec>(pmadd(preinterpret<vec_xmm>(scale), preinterpret<vec_xmm>(src), ploadu<vec_xmm>(mem)));
301 preinterpret<vec>(pmadd(preinterpret<vec_xmm>(scale), preinterpret<vec_xmm>(src), ploadl<vec_xmm>(mem)));
305 preinterpret<vec>(pmadds(preinterpret<vec_xmm>(scale), preinterpret<vec_xmm>(src), ploads<vec_xmm>(mem)));
312 switch (nelems *
sizeof(*mem) * 8) {
315 reg = pgather<Scalar, vec>(mem, inc);
316 dst = pmadd(scale, src, reg);
319 reg = pgather<Scalar, vec>(mem, inc);
320 dst = pmadd(scale, src, reg);
323 reg = pgather<Scalar, vec>(mem, inc);
324 dst = pmadd(scale, src, reg);
327 reg = preinterpret<vec>(pgather<Scalar, vec_ymm>(mem, inc));
328 dst = preinterpret<vec>(
329 pmadd(preinterpret<vec_ymm>(scale), preinterpret<vec_ymm>(src), preinterpret<vec_ymm>(reg)));
332 reg = preinterpret<vec>(pgather<Scalar, vec_xmm>(mem, inc));
333 dst = preinterpret<vec>(
334 pmadd(preinterpret<vec_xmm>(scale), preinterpret<vec_xmm>(src), preinterpret<vec_xmm>(reg)));
337 EIGEN_IF_CONSTEXPR (is_f32) {
338 reg = pgather(reg, mem, inc, mask);
339 dst = preinterpret<vec>(
340 pmadd(preinterpret<vec_xmm>(scale), preinterpret<vec_xmm>(src), preinterpret<vec_xmm>(reg)));
342 dst = preinterpret<vec>(
343 pmadd(preinterpret<vec_xmm>(scale), preinterpret<vec_xmm>(src), ploadl<vec_xmm>(mem)));
348 preinterpret<vec>(pmadds(preinterpret<vec_xmm>(scale), preinterpret<vec_xmm>(src), ploads<vec_xmm>(mem)));
354 template <
int index,
int endY,
int nelems>
355 EIGEN_ALWAYS_INLINE
void a_load_one(
const Scalar* ao) {
356 constexpr int j = index / endY;
357 constexpr int i = index % endY;
358 auto& a_reg = zmm[a_regs[i + (j % 2) * 3]];
359 const Scalar* a_addr = ao + nelems * j + nelems_in_cache_line * i - a_shift;
360 a_load<nelems>(a_reg, a_addr);
363 template <
int endY,
int nelems,
int... indices>
364 EIGEN_ALWAYS_INLINE
void a_loads_impl(std::integer_sequence<int, indices...>,
const Scalar* ao) {
365 int unused[] = {0, (a_load_one<indices, endY, nelems>(ao), 0)...};
366 EIGEN_UNUSED_VARIABLE(unused);
369 template <
int j,
int endX,
int i,
int endY,
int nelems>
370 EIGEN_ALWAYS_INLINE
void a_loads(
const Scalar* ao) {
371 static_assert(j == 0 && i == 0,
"a_loads expects to start at zero");
372 a_loads_impl<endY, nelems>(std::make_integer_sequence<int, endX * endY>{}, ao);
389 template <
int index,
int um_vecs,
int a_unroll,
int b_unroll>
390 EIGEN_ALWAYS_INLINE
void prefetch_c_one(Scalar*& co1, Scalar*& co2) {
391 constexpr int un = index / um_vecs;
392 constexpr int i = index % um_vecs;
394 EIGEN_IF_CONSTEXPR (b_unroll >= un + 1) {
395 EIGEN_IF_CONSTEXPR (un == 4 && i == 0) {
399 Scalar* co = (un + 1 <= 4) ? co1 : co2;
400 auto co_off = (un % 4) * ldc + a_unroll - 1 + i * nelems_in_cache_line *
sizeof *co;
401 prefetch_c(co + co_off);
405 template <
int um_vecs,
int a_unroll,
int b_unroll,
int... indices>
406 EIGEN_ALWAYS_INLINE
void prefetch_cs_impl(std::integer_sequence<int, indices...>, Scalar*& co1, Scalar*& co2) {
407 int unused[] = {0, (prefetch_c_one<indices, um_vecs, a_unroll, b_unroll>(co1, co2), 0)...};
408 EIGEN_UNUSED_VARIABLE(unused);
411 template <
int un,
int max_b_unroll,
int i,
int um_vecs,
int a_unroll,
int b_unroll>
412 EIGEN_ALWAYS_INLINE
void prefetch_cs(Scalar*& co1, Scalar*& co2) {
413 static_assert(un == 0 && i == 0,
"prefetch_cs expects to start at zero");
414 prefetch_cs_impl<um_vecs, a_unroll, b_unroll>(std::make_integer_sequence<int, max_b_unroll * um_vecs>{}, co1, co2);
418 template <
int i,
int idx,
int nelems>
419 EIGEN_ALWAYS_INLINE
void scale_load_c_one(
const Scalar* cox, vec& alpha_reg) {
420 auto& c_reg = zmm[c_regs[i + idx * 3]];
421 auto& c_load_reg = zmm[c_load_regs[i % 3]];
423 EIGEN_IF_CONSTEXPR (is_unit_inc)
424 c_mem += i * nelems_in_cache_line;
426 c_mem += i * nelems_in_cache_line * inc;
428 if (!is_beta0 && is_alpha1)
429 vaddm<nelems>(c_reg, c_mem, c_reg, c_load_reg);
430 else if (!is_beta0 && !is_alpha1)
431 vfmaddm<nelems>(c_reg, c_mem, c_reg, alpha_reg, c_load_reg);
432 else if (is_beta0 && !is_alpha1)
433 c_reg = pmul(alpha_reg, c_reg);
436 template <
int start,
int idx,
int nelems,
int... indices>
437 EIGEN_ALWAYS_INLINE
void scale_load_c_impl(std::integer_sequence<int, indices...>,
const Scalar* cox,
439 int unused[] = {0, (scale_load_c_one<start + indices, idx, nelems>(cox, alpha_reg), 0)...};
440 EIGEN_UNUSED_VARIABLE(unused);
443 template <
int i,
int um_vecs,
int idx,
int nelems>
444 EIGEN_ALWAYS_INLINE
void scale_load_c(
const Scalar* cox, vec& alpha_reg) {
445 static_assert(i <= um_vecs,
"invalid C load range");
446 scale_load_c_impl<i, idx, nelems>(std::make_integer_sequence<int, um_vecs - i>{}, cox, alpha_reg);
450 template <
int i,
int idx,
int nelems>
451 EIGEN_ALWAYS_INLINE
void write_c_one(Scalar* cox) {
452 auto& c_reg = zmm[c_regs[i + idx * 3]];
454 EIGEN_IF_CONSTEXPR (is_unit_inc)
455 c_mem += i * nelems_in_cache_line;
457 c_mem += i * nelems_in_cache_line * inc;
459 c_store<nelems>(c_mem, c_reg);
460 c_reg = pzero(c_reg);
463 template <
int start,
int idx,
int nelems,
int... indices>
464 EIGEN_ALWAYS_INLINE
void write_c_impl(std::integer_sequence<int, indices...>, Scalar* cox) {
465 int unused[] = {0, (write_c_one<start + indices, idx, nelems>(cox), 0)...};
466 EIGEN_UNUSED_VARIABLE(unused);
469 template <
int i,
int um_vecs,
int idx,
int nelems>
470 EIGEN_ALWAYS_INLINE
void write_c(Scalar* cox) {
471 static_assert(i <= um_vecs,
"invalid C store range");
472 write_c_impl<i, idx, nelems>(std::make_integer_sequence<int, um_vecs - i>{}, cox);
505 template <
int pow,
int a_unroll,
int idx>
506 EIGEN_ALWAYS_INLINE
void c_update_1count(Scalar*& cox) {
507 EIGEN_IF_CONSTEXPR (pow >= 4) {
511 const int um_vecs = numext::div_ceil(a_unroll, nelems_in_cache_line);
512 auto& alpha_reg = zmm[alpha_load_reg];
514 scale_load_c<0, um_vecs, idx, a_unroll>(cox, alpha_reg);
515 write_c<0, um_vecs, idx, a_unroll>(cox);
518 template <
int pow,
int a_unroll>
519 EIGEN_ALWAYS_INLINE
void c_update_1pow(Scalar*& co1, Scalar*& co2) {
520 constexpr int idx = pow / 2;
521 Scalar*& cox = idx == 0 ? co1 : co2;
523 constexpr int max_count = (pow + 1) / 2;
524 static_assert(max_count <= 4,
"Unsupported max_count.");
526 EIGEN_IF_CONSTEXPR (1 <= max_count) {
527 c_update_1count<pow, a_unroll, idx + 0>(cox);
529 EIGEN_IF_CONSTEXPR (2 <= max_count) {
530 c_update_1count<pow, a_unroll, idx + 1>(cox);
532 EIGEN_IF_CONSTEXPR (3 <= max_count) {
533 c_update_1count<pow, a_unroll, idx + 2>(cox);
535 EIGEN_IF_CONSTEXPR (4 <= max_count) {
536 c_update_1count<pow, a_unroll, idx + 3>(cox);
540 template <
int max_b_unroll,
int a_unroll,
int b_unroll>
541 EIGEN_ALWAYS_INLINE
void c_update(Scalar*& co1, Scalar*& co2) {
542 auto& alpha_reg = zmm[alpha_load_reg];
546 alpha_reg = pload1<vec>(alpha);
548 EIGEN_IF_CONSTEXPR (!is_unit_inc && a_unroll < nelems_in_cache_line) {
549 mask =
static_cast<umask_t
>((1ull << a_unroll) - 1);
552 static_assert(max_b_unroll <= 8,
"Unsupported max_b_unroll");
554 EIGEN_IF_CONSTEXPR (1 <= max_b_unroll && 1 <= b_unroll) {
555 c_update_1pow<1, a_unroll>(co1, co2);
557 EIGEN_IF_CONSTEXPR (2 <= max_b_unroll && 2 <= b_unroll) {
558 c_update_1pow<2, a_unroll>(co1, co2);
560 EIGEN_IF_CONSTEXPR (4 <= max_b_unroll && 4 <= b_unroll) {
561 c_update_1pow<4, a_unroll>(co1, co2);
563 EIGEN_IF_CONSTEXPR (8 <= max_b_unroll && 8 <= b_unroll) {
564 c_update_1pow<8, a_unroll>(co1, co2);
567 EIGEN_IF_CONSTEXPR (b_unroll == 1)
574 template <
int um,
int idx,
int uk,
bool fetch_x,
bool ktail>
575 EIGEN_ALWAYS_INLINE
void compute_one(const Scalar* ao, const Scalar* bo,
int& fetchA_idx,
int& fetchB_idx,
577 auto& c_reg = zmm[c_regs[um + idx * 3]];
578 auto& a_reg = zmm[a_regs[um + (uk % 2) * 3]];
580 vfmadd(c_reg, a_reg, b_reg);
582 EIGEN_IF_CONSTEXPR (!fetch_x && um == 0 &&
583 (((idx == 0 || idx == 6) && (uk % 2 == 0 || is_f64 || ktail)) ||
584 (idx == 3 && (uk % 2 == 1 || is_f64 || ktail)))) {
585 prefetch_a(ao + nelems_in_cache_line * fetchA_idx);
589 EIGEN_IF_CONSTEXPR (um == 0 && idx == 1 && (uk % 2 == 0 || is_f64 || ktail)) {
590 prefetch_b(bo + nelems_in_cache_line * fetchB_idx);
595 template <
int start,
int idx,
int uk,
bool fetch_x,
bool ktail,
int... indices>
596 EIGEN_ALWAYS_INLINE
void compute_impl(std::integer_sequence<int, indices...>,
const Scalar* ao,
const Scalar* bo,
597 int& fetchA_idx,
int& fetchB_idx, vec& b_reg) {
599 0, (compute_one<start + indices, idx, uk, fetch_x, ktail>(ao, bo, fetchA_idx, fetchB_idx, b_reg), 0)...};
600 EIGEN_UNUSED_VARIABLE(unused);
603 template <
int um,
int uk,
int nelems,
bool ktail>
604 EIGEN_ALWAYS_INLINE
void load_a_one(
const Scalar* ao) {
605 auto& a_reg = zmm[a_regs[um + (uk % 2) * 3]];
606 const Scalar* a_addr = ao + nelems * (1 + !ktail * !use_less_a_regs + uk) + nelems_in_cache_line * um - a_shift;
607 a_load<nelems>(a_reg, a_addr);
610 template <
int um,
int um_vecs,
int idx,
int uk,
bool fetch_x,
bool ktail>
611 EIGEN_ALWAYS_INLINE
void compute(
const Scalar* ao,
const Scalar* bo,
int& fetchA_idx,
int& fetchB_idx, vec& b_reg) {
612 static_assert(um <= um_vecs,
"invalid compute range");
613 compute_impl<um, idx, uk, fetch_x, ktail>(std::make_integer_sequence<int, um_vecs - um>{}, ao, bo, fetchA_idx,
618 template <
int start,
int uk,
int nelems,
bool ktail,
int... indices>
619 EIGEN_ALWAYS_INLINE
void load_a_impl(std::integer_sequence<int, indices...>,
const Scalar* ao) {
620 int unused[] = {0, (load_a_one<start + indices, uk, nelems, ktail>(ao), 0)...};
621 EIGEN_UNUSED_VARIABLE(unused);
624 template <
int um,
int um_vecs,
int uk,
int nelems,
bool ktail>
625 EIGEN_ALWAYS_INLINE
void load_a(
const Scalar* ao) {
626 static_assert(um <= um_vecs,
"invalid A load range");
627 load_a_impl<um, uk, nelems, ktail>(std::make_integer_sequence<int, um_vecs - um>{}, ao);
630 template <
int uk,
int pow,
int count,
int um_vecs,
int b_unroll,
bool ktail,
bool fetch_x,
bool preload_next_k = true>
631 EIGEN_ALWAYS_INLINE
void innerkernel_1pow_one(
const Scalar*& aa,
const Scalar*
const& ao,
const Scalar*
const& bo,
632 int& fetchA_idx,
int& fetchB_idx) {
633 const int idx = (pow / 2) + count;
635 auto& b_reg = zmm[b_regs[idx % 2]];
637 EIGEN_IF_CONSTEXPR (fetch_x && uk == 3 && idx == 0) {
640 EIGEN_IF_CONSTEXPR (fetch_x && uk == 3 && idx == 4) {
644 EIGEN_IF_CONSTEXPR (b_unroll >= pow) {
645 compute<0, um_vecs, idx, uk, fetch_x, ktail>(ao, bo, fetchA_idx, fetchB_idx, b_reg);
647 constexpr int b_load_offset = idx + 1 + (b_unroll > 1) * !use_less_b_regs;
648 EIGEN_IF_CONSTEXPR (preload_next_k || b_load_offset < b_unroll) {
649 const Scalar* b_addr = bo + b_unroll * uk + b_load_offset - b_shift;
650 b_load(b_reg, b_addr);
655 template <
int uk,
int pow,
int count,
int um_vecs,
int b_unroll,
bool ktail,
bool fetch_x,
bool preload_next_k,
657 EIGEN_ALWAYS_INLINE
void innerkernel_1pow_impl(std::integer_sequence<int, indices...>,
const Scalar*& aa,
658 const Scalar*
const& ao,
const Scalar*
const& bo,
int& fetchA_idx,
661 (innerkernel_1pow_one<uk, pow, count + indices, um_vecs, b_unroll, ktail, fetch_x, preload_next_k>(
662 aa, ao, bo, fetchA_idx, fetchB_idx),
664 EIGEN_UNUSED_VARIABLE(unused);
667 template <
int uk,
int pow,
int count,
int um_vecs,
int b_unroll,
bool ktail,
bool fetch_x,
bool c_fetch,
668 bool preload_next_k =
true>
669 EIGEN_ALWAYS_INLINE
void innerkernel_1pow(
const Scalar*& aa,
const Scalar*
const& ao,
const Scalar*
const& bo,
670 Scalar*& co2,
int& fetchA_idx,
int& fetchB_idx) {
671 constexpr int max_count = (pow + 1) / 2;
672 static_assert(count <= max_count,
"invalid B load range");
673 innerkernel_1pow_impl<uk, pow, count, um_vecs, b_unroll, ktail, fetch_x, preload_next_k>(
674 std::make_integer_sequence<int, max_count - count>{}, aa, ao, bo, fetchA_idx, fetchB_idx);
677 EIGEN_IF_CONSTEXPR (pow == 2 && c_fetch) {
678 EIGEN_IF_CONSTEXPR (uk % 3 == 0 && uk > 0) {
681 prefetch_c(co2 + (uk % 3) * nelems_in_cache_line);
686 template <
int uk,
int max_b_unroll,
int a_unroll,
int b_unroll,
bool ktail,
bool fetch_x,
bool c_fetch,
687 bool preload_next_k =
true>
688 EIGEN_ALWAYS_INLINE
void innerkernel_1uk(
const Scalar*& aa,
const Scalar*
const& ao,
const Scalar*
const& bo,
689 Scalar*& co2,
int& fetchA_idx,
int& fetchB_idx) {
690 const int um_vecs = numext::div_ceil(a_unroll, nelems_in_cache_line);
692 EIGEN_IF_CONSTEXPR (max_b_unroll >= 1)
693 innerkernel_1pow<uk, 1, 0, um_vecs, b_unroll, ktail, fetch_x, c_fetch, preload_next_k>(aa, ao, bo, co2,
694 fetchA_idx, fetchB_idx);
695 EIGEN_IF_CONSTEXPR (max_b_unroll >= 2)
696 innerkernel_1pow<uk, 2, 0, um_vecs, b_unroll, ktail, fetch_x, c_fetch, preload_next_k>(aa, ao, bo, co2,
697 fetchA_idx, fetchB_idx);
698 EIGEN_IF_CONSTEXPR (max_b_unroll >= 4)
699 innerkernel_1pow<uk, 4, 0, um_vecs, b_unroll, ktail, fetch_x, c_fetch, preload_next_k>(aa, ao, bo, co2,
700 fetchA_idx, fetchB_idx);
701 EIGEN_IF_CONSTEXPR (max_b_unroll >= 8)
702 innerkernel_1pow<uk, 8, 0, um_vecs, b_unroll, ktail, fetch_x, c_fetch, preload_next_k>(aa, ao, bo, co2,
703 fetchA_idx, fetchB_idx);
706 if (preload_next_k) load_a<0, um_vecs, uk, a_unroll, ktail>(ao);
749 template <
int a_unroll,
int b_unroll,
int k_factor,
int max_b_unroll,
int max_k_factor,
bool c_fetch,
750 bool preload_next_k = true>
751 EIGEN_ALWAYS_INLINE
void innerkernel(const Scalar*& aa, const Scalar*& ao, const Scalar*& bo, Scalar*& co2) {
755 const bool fetch_x = k_factor == max_k_factor;
756 const bool ktail = k_factor == 1;
758 static_assert(k_factor <= 4 && k_factor > 0,
"innerkernel maximum k_factor supported is 4");
759 static_assert(preload_next_k || k_factor == 1,
"skipping next-k preload only allowed when k unroll is 1");
762 innerkernel_1uk<0, max_b_unroll, a_unroll, b_unroll, ktail, fetch_x, c_fetch, preload_next_k>(
763 aa, ao, bo, co2, fetchA_idx, fetchB_idx);
765 innerkernel_1uk<1, max_b_unroll, a_unroll, b_unroll, ktail, fetch_x, c_fetch, preload_next_k>(
766 aa, ao, bo, co2, fetchA_idx, fetchB_idx);
768 innerkernel_1uk<2, max_b_unroll, a_unroll, b_unroll, ktail, fetch_x, c_fetch, preload_next_k>(
769 aa, ao, bo, co2, fetchA_idx, fetchB_idx);
771 innerkernel_1uk<3, max_b_unroll, a_unroll, b_unroll, ktail, fetch_x, c_fetch, preload_next_k>(
772 aa, ao, bo, co2, fetchA_idx, fetchB_idx);
775 ao += a_unroll * k_factor;
776 bo += b_unroll * k_factor;
779 template <
int a_unroll,
int b_unroll,
int max_b_unroll>
780 EIGEN_ALWAYS_INLINE
void kloop(
const Scalar*& aa,
const Scalar*& ao,
const Scalar*& bo, Scalar*& co1, Scalar*& co2) {
781 const int um_vecs = numext::div_ceil(a_unroll, nelems_in_cache_line);
782 EIGEN_IF_CONSTEXPR (!use_less_a_regs) {
784 a_loads<0, 2, 0, um_vecs, a_unroll>(ao);
786 a_loads<0, 1, 0, um_vecs, a_unroll>(ao);
788 a_loads<0, 1, 0, um_vecs, a_unroll>(ao);
791 b_load(zmm[b_regs[0]], bo - b_shift + 0);
792 EIGEN_IF_CONSTEXPR (b_unroll > 1 && !use_less_b_regs) {
793 b_load(zmm[b_regs[1]], bo - b_shift + 1);
797 prefetch_cs<0, max_b_unroll, 0, um_vecs, a_unroll, b_unroll>(co1, co2);
801 const int max_k_factor = 4;
802 Index kRem = k % max_k_factor;
804 if (k_ >= max_k_factor) {
806 kRem += max_k_factor;
808 Index loop_count = k_ / max_k_factor;
810 if (loop_count > 0) {
812 loop_count -= SECOND_FETCH;
814 while (loop_count > 0) {
815 innerkernel<a_unroll, b_unroll, max_k_factor, max_b_unroll, max_k_factor, 0>(aa, ao, bo, co2);
819 co2 = co1 + nelems_in_cache_line - 1;
821 loop_count += b_unroll;
822 while (loop_count > 0) {
823 innerkernel<a_unroll, b_unroll, max_k_factor, max_b_unroll, max_k_factor, 1>(aa, ao, bo, co2);
827 loop_count += SECOND_FETCH - b_unroll;
828 while (loop_count > 0) {
829 innerkernel<a_unroll, b_unroll, max_k_factor, max_b_unroll, max_k_factor, 0>(aa, ao, bo, co2);
837 while (loop_count > 1) {
838 innerkernel<a_unroll, b_unroll, 1, max_b_unroll, max_k_factor, 0>(aa, ao, bo, co2);
841 if (loop_count > 0) {
842 innerkernel<a_unroll, b_unroll, 1, max_b_unroll, max_k_factor, 0, false>(aa, ao, bo, co2);
846 c_update<max_b_unroll, a_unroll, b_unroll>(co1, co2);
849 template <
int a_unroll,
int b_unroll,
int max_b_unroll>
850 EIGEN_ALWAYS_INLINE
void nloop(
const Scalar*& aa,
const Scalar*& ao,
const Scalar*& bo, Scalar*& co1, Scalar*& co2) {
852 ao = a + a_off * a_unroll;
855 bo += b_unroll * b_off;
857 kloop<a_unroll, b_unroll, max_b_unroll>(aa, ao, bo, co1, co2);
860 bo += b_unroll * (b_stride - k - b_off);
866 template <
int a_unroll,
int max_a_unroll,
int max_b_unroll>
867 EIGEN_ALWAYS_INLINE
void mloop(
const Scalar*& ao,
const Scalar*& bo, Scalar*& co1, Scalar*& co2) {
869 const Scalar* aa = a + a_unroll * a_stride;
873 if (a_unroll >= max_a_unroll) co2 = c + 2 * ldc;
874 EIGEN_IF_CONSTEXPR (is_unit_inc)
883 for (Index i = n / max_b_unroll; i > 0; i--) nloop<a_unroll, max_b_unroll, max_b_unroll>(aa, ao, bo, co1, co2);
886 if (n & 4 && max_b_unroll > 4) nloop<a_unroll, 4, max_b_unroll>(aa, ao, bo, co1, co2);
889 int n_rem = 2 * ((n & 2) != 0) + 1 * ((n & 1) != 0);
891 nloop<a_unroll, 1, max_b_unroll>(aa, ao, bo, co1, co2);
896 a = ao + a_unroll * (a_stride - k - a_off);
901 template <
int max_a_unroll,
int max_b_unroll>
902 EIGEN_ALWAYS_INLINE
void compute_kern() {
906 const Scalar* ao =
nullptr;
907 const Scalar* bo =
nullptr;
908 Scalar* co1 =
nullptr;
909 Scalar* co2 =
nullptr;
912 for (; m >= max_a_unroll; m -= max_a_unroll) mloop<max_a_unroll, max_a_unroll, max_b_unroll>(ao, bo, co1, co2);
915 EIGEN_IF_CONSTEXPR (max_a_unroll > 32 && is_f32) {
916 constexpr int a_unroll32 = is_f32 ? 32 : 24;
917 if (m & 32) mloop<a_unroll32, max_a_unroll, max_b_unroll>(ao, bo, co1, co2);
919 EIGEN_IF_CONSTEXPR (max_a_unroll > 16) {
920 if (m & 16) mloop<16, max_a_unroll, max_b_unroll>(ao, bo, co1, co2);
922 EIGEN_IF_CONSTEXPR (max_a_unroll > 8) {
923 if (m & 8) mloop<8, max_a_unroll, max_b_unroll>(ao, bo, co1, co2);
925 EIGEN_IF_CONSTEXPR (max_a_unroll > 4) {
926 if (m & 4) mloop<4, max_a_unroll, max_b_unroll>(ao, bo, co1, co2);
928 EIGEN_IF_CONSTEXPR (max_a_unroll > 2 && is_f64) {
929 if (m & 2) mloop<2, max_a_unroll, max_b_unroll>(ao, bo, co1, co2);
931 EIGEN_IF_CONSTEXPR (max_a_unroll > 1 && is_f64) {
932 if (m & 1) mloop<1, max_a_unroll, max_b_unroll>(ao, bo, co1, co2);
937 EIGEN_IF_CONSTEXPR (is_f32) {
938 int m_rem = 2 * ((m & 2) != 0) + 1 * ((m & 1) != 0);
940 mloop<1, max_a_unroll, max_b_unroll>(ao, bo, co1, co2);
946 gemm_class(Index m_, Index n_, Index k_, Index ldc_, Index inc_,
const Scalar* alpha_,
const Scalar* a_,
947 const Scalar* b_, Scalar* c_,
bool is_alpha1_,
bool is_beta0_, Index a_stride_, Index b_stride_,
948 Index a_off_, Index b_off_)
958 is_alpha1(is_alpha1_),
965 zmm[8] = pzero(zmm[8]);
966 zmm[9] = pzero(zmm[9]);
967 zmm[10] = pzero(zmm[10]);
968 zmm[11] = pzero(zmm[11]);
969 zmm[12] = pzero(zmm[12]);
970 zmm[13] = pzero(zmm[13]);
971 zmm[14] = pzero(zmm[14]);
972 zmm[15] = pzero(zmm[15]);
973 zmm[16] = pzero(zmm[16]);
974 zmm[17] = pzero(zmm[17]);
975 zmm[18] = pzero(zmm[18]);
976 zmm[19] = pzero(zmm[19]);
977 zmm[20] = pzero(zmm[20]);
978 zmm[21] = pzero(zmm[21]);
979 zmm[22] = pzero(zmm[22]);
980 zmm[23] = pzero(zmm[23]);
981 zmm[24] = pzero(zmm[24]);
982 zmm[25] = pzero(zmm[25]);
983 zmm[26] = pzero(zmm[26]);
984 zmm[27] = pzero(zmm[27]);
985 zmm[28] = pzero(zmm[28]);
986 zmm[29] = pzero(zmm[29]);
987 zmm[30] = pzero(zmm[30]);
988 zmm[31] = pzero(zmm[31]);
992template <
typename Scalar,
bool is_unit_inc>
993const int gemm_class<Scalar, is_unit_inc>::a_regs[];
995template <
typename Scalar,
bool is_unit_inc>
996const int gemm_class<Scalar, is_unit_inc>::b_regs[];
998template <
typename Scalar,
bool is_unit_inc>
999const int gemm_class<Scalar, is_unit_inc>::c_regs[];
1008template <
typename Scalar,
int max_a_unroll,
int max_b_unroll,
bool is_alpha1,
bool is_beta0,
bool is_unit_inc>
1009EIGEN_DONT_INLINE
void gemm_kern_avx512(Index m, Index n, Index k, Scalar* alpha,
const Scalar* a,
const Scalar* b,
1010 Scalar* c, Index ldc, Index inc = 1, Index a_stride = -1, Index b_stride = -1,
1011 Index a_off = 0, Index b_off = 0) {
1012 if (m <= 0 || n <= 0 || k <= 0)
return;
1013 if (a_stride == -1) a_stride = k;
1014 if (b_stride == -1) b_stride = k;
1016 gemm_class<Scalar, is_unit_inc> g(m, n, k, ldc, inc, alpha, a, b, c, is_alpha1, is_beta0, a_stride, b_stride, a_off,
1018 g.template compute_kern<max_a_unroll, max_b_unroll>();
1022template <
bool ConjLhs_,
bool ConjRhs_,
int PacketSize_>
1023class gebp_traits<float, float, ConjLhs_, ConjRhs_, Architecture::Target, PacketSize_>
1024 :
public gebp_traits<float, float, ConjLhs_, ConjRhs_, Architecture::Generic, PacketSize_> {
1025 using Base = gebp_traits<float, float, ConjLhs_, ConjRhs_, Architecture::Generic, PacketSize_>;
1028 enum { nr = Base::Vectorizable ? 8 : 4 };
1031template <
bool ConjLhs_,
bool ConjRhs_,
int PacketSize_>
1032class gebp_traits<double, double, ConjLhs_, ConjRhs_, Architecture::Target, PacketSize_>
1033 :
public gebp_traits<double, double, ConjLhs_, ConjRhs_, Architecture::Generic, PacketSize_> {
1034 using Base = gebp_traits<double, double, ConjLhs_, ConjRhs_, Architecture::Generic, PacketSize_>;
1037 enum { nr = Base::Vectorizable ? 8 : 4 };
1040template <
typename Scalar,
typename Index,
typename DataMapper,
bool Conjugate,
bool PanelMode>
1041struct gemm_pack_rhs<Scalar, Index, DataMapper, 8,
ColMajor, Conjugate, PanelMode> {
1042 typedef typename packet_traits<Scalar>::type Packet;
1043 typedef typename DataMapper::LinearMapper LinearMapper;
1044 enum { PacketSize = packet_traits<Scalar>::size };
1045 EIGEN_DONT_INLINE
void operator()(Scalar* blockB,
const DataMapper& rhs, Index depth, Index cols, Index stride = 0,
1046 Index offset = 0)
const;
1049template <
typename Scalar,
typename Index,
typename DataMapper,
bool Conjugate,
bool PanelMode>
1050EIGEN_DONT_INLINE
void gemm_pack_rhs<Scalar, Index, DataMapper, 8, ColMajor, Conjugate, PanelMode>::operator()(
1051 Scalar* blockB,
const DataMapper& rhs, Index depth, Index cols, Index stride, Index offset)
const {
1052 constexpr int nr = 8;
1053 EIGEN_ASM_COMMENT(
"EIGEN PRODUCT PACK RHS COLMAJOR");
1054 EIGEN_UNUSED_VARIABLE(stride);
1055 EIGEN_UNUSED_VARIABLE(offset);
1056 eigen_assert(((!PanelMode) && stride == 0 && offset == 0) || (PanelMode && stride >= depth && offset <= stride));
1057 conj_if<NumTraits<Scalar>::IsComplex && Conjugate> cj;
1058 Index packet_cols8 = nr >= 8 ? (cols / 8) * 8 : 0;
1059 Index packet_cols4 = nr >= 4 ? (cols / 4) * 4 : 0;
1061 const Index peeled_k = (depth / PacketSize) * PacketSize;
1062 EIGEN_IF_CONSTEXPR (nr >= 8) {
1063 for (Index j2 = 0; j2 < packet_cols8; j2 += 8) {
1065 EIGEN_IF_CONSTEXPR (PanelMode) count += 8 * offset;
1066 const LinearMapper dm0 = rhs.getLinearMapper(0, j2 + 0);
1067 const LinearMapper dm1 = rhs.getLinearMapper(0, j2 + 1);
1068 const LinearMapper dm2 = rhs.getLinearMapper(0, j2 + 2);
1069 const LinearMapper dm3 = rhs.getLinearMapper(0, j2 + 3);
1070 const LinearMapper dm4 = rhs.getLinearMapper(0, j2 + 4);
1071 const LinearMapper dm5 = rhs.getLinearMapper(0, j2 + 5);
1072 const LinearMapper dm6 = rhs.getLinearMapper(0, j2 + 6);
1073 const LinearMapper dm7 = rhs.getLinearMapper(0, j2 + 7);
1075 EIGEN_IF_CONSTEXPR ((PacketSize % 8) == 0 || PacketSize == 4) {
1076 for (; k < peeled_k; k += PacketSize) {
1077 PacketBlock<Packet, 8> kernel;
1079 kernel.packet[0] = dm0.template loadPacket<Packet>(k);
1080 kernel.packet[1] = dm1.template loadPacket<Packet>(k);
1081 kernel.packet[2] = dm2.template loadPacket<Packet>(k);
1082 kernel.packet[3] = dm3.template loadPacket<Packet>(k);
1083 kernel.packet[4] = dm4.template loadPacket<Packet>(k);
1084 kernel.packet[5] = dm5.template loadPacket<Packet>(k);
1085 kernel.packet[6] = dm6.template loadPacket<Packet>(k);
1086 kernel.packet[7] = dm7.template loadPacket<Packet>(k);
1088 EIGEN_IF_CONSTEXPR (PacketSize == 4) {
1092 PacketBlock<Packet, 4> tmp_lo;
1093 tmp_lo.packet[0] = kernel.packet[0];
1094 tmp_lo.packet[1] = kernel.packet[1];
1095 tmp_lo.packet[2] = kernel.packet[2];
1096 tmp_lo.packet[3] = kernel.packet[3];
1098 PacketBlock<Packet, 4> tmp_hi;
1099 tmp_hi.packet[0] = kernel.packet[4];
1100 tmp_hi.packet[1] = kernel.packet[5];
1101 tmp_hi.packet[2] = kernel.packet[6];
1102 tmp_hi.packet[3] = kernel.packet[7];
1104 kernel.packet[0] = tmp_lo.packet[0];
1105 kernel.packet[1] = tmp_hi.packet[0];
1106 kernel.packet[2] = tmp_lo.packet[1];
1107 kernel.packet[3] = tmp_hi.packet[1];
1108 kernel.packet[4] = tmp_lo.packet[2];
1109 kernel.packet[5] = tmp_hi.packet[2];
1110 kernel.packet[6] = tmp_lo.packet[3];
1111 kernel.packet[7] = tmp_hi.packet[3];
1116 pstoreu(blockB + count + 0 * PacketSize, cj.pconj(kernel.packet[0]));
1117 pstoreu(blockB + count + 1 * PacketSize, cj.pconj(kernel.packet[1]));
1118 pstoreu(blockB + count + 2 * PacketSize, cj.pconj(kernel.packet[2]));
1119 pstoreu(blockB + count + 3 * PacketSize, cj.pconj(kernel.packet[3]));
1120 pstoreu(blockB + count + 4 * PacketSize, cj.pconj(kernel.packet[4]));
1121 pstoreu(blockB + count + 5 * PacketSize, cj.pconj(kernel.packet[5]));
1122 pstoreu(blockB + count + 6 * PacketSize, cj.pconj(kernel.packet[6]));
1123 pstoreu(blockB + count + 7 * PacketSize, cj.pconj(kernel.packet[7]));
1124 count += 8 * PacketSize;
1127 for (; k < depth; k++) {
1128 blockB[count + 0] = cj(dm0(k));
1129 blockB[count + 1] = cj(dm1(k));
1130 blockB[count + 2] = cj(dm2(k));
1131 blockB[count + 3] = cj(dm3(k));
1132 blockB[count + 4] = cj(dm4(k));
1133 blockB[count + 5] = cj(dm5(k));
1134 blockB[count + 6] = cj(dm6(k));
1135 blockB[count + 7] = cj(dm7(k));
1139 EIGEN_IF_CONSTEXPR (PanelMode) count += 8 * (stride - offset - depth);
1143 EIGEN_IF_CONSTEXPR (nr >= 4) {
1144 for (Index j2 = packet_cols8; j2 < packet_cols4; j2 += 4) {
1146 EIGEN_IF_CONSTEXPR (PanelMode) count += 4 * offset;
1147 const LinearMapper dm0 = rhs.getLinearMapper(0, j2 + 0);
1148 const LinearMapper dm1 = rhs.getLinearMapper(0, j2 + 1);
1149 const LinearMapper dm2 = rhs.getLinearMapper(0, j2 + 2);
1150 const LinearMapper dm3 = rhs.getLinearMapper(0, j2 + 3);
1153 EIGEN_IF_CONSTEXPR ((PacketSize % 4) == 0 || PacketSize == 2) {
1154 for (; k < peeled_k; k += PacketSize) {
1155 PacketBlock<Packet, 4> kernel;
1156 kernel.packet[0] = dm0.template loadPacket<Packet>(k);
1157 kernel.packet[1] = dm1.template loadPacket<Packet>(k);
1158 kernel.packet[2] = dm2.template loadPacket<Packet>(k);
1159 kernel.packet[3] = dm3.template loadPacket<Packet>(k);
1160 EIGEN_IF_CONSTEXPR (PacketSize == 2) {
1162 PacketBlock<Packet, 2> tmp01;
1163 tmp01.packet[0] = kernel.packet[0];
1164 tmp01.packet[1] = kernel.packet[1];
1166 PacketBlock<Packet, 2> tmp23;
1167 tmp23.packet[0] = kernel.packet[2];
1168 tmp23.packet[1] = kernel.packet[3];
1170 kernel.packet[0] = tmp01.packet[0];
1171 kernel.packet[1] = tmp23.packet[0];
1172 kernel.packet[2] = tmp01.packet[1];
1173 kernel.packet[3] = tmp23.packet[1];
1177 pstoreu(blockB + count + 0 * PacketSize, cj.pconj(kernel.packet[0]));
1178 pstoreu(blockB + count + 1 * PacketSize, cj.pconj(kernel.packet[1]));
1179 pstoreu(blockB + count + 2 * PacketSize, cj.pconj(kernel.packet[2]));
1180 pstoreu(blockB + count + 3 * PacketSize, cj.pconj(kernel.packet[3]));
1181 count += 4 * PacketSize;
1184 for (; k < depth; k++) {
1185 blockB[count + 0] = cj(dm0(k));
1186 blockB[count + 1] = cj(dm1(k));
1187 blockB[count + 2] = cj(dm2(k));
1188 blockB[count + 3] = cj(dm3(k));
1192 EIGEN_IF_CONSTEXPR (PanelMode) count += 4 * (stride - offset - depth);
1197 for (Index j2 = packet_cols4; j2 < cols; ++j2) {
1198 EIGEN_IF_CONSTEXPR (PanelMode) count += offset;
1199 const LinearMapper dm0 = rhs.getLinearMapper(0, j2);
1200 for (Index k = 0; k < depth; k++) {
1201 blockB[count] = cj(dm0(k));
1204 EIGEN_IF_CONSTEXPR (PanelMode) count += (stride - offset - depth);
1208template <
typename Scalar,
typename Index,
typename DataMapper,
bool Conjugate,
bool PanelMode>
1209struct gemm_pack_rhs<Scalar, Index, DataMapper, 8,
RowMajor, Conjugate, PanelMode> {
1210 typedef typename packet_traits<Scalar>::type Packet;
1211 typedef typename unpacket_traits<Packet>::half HalfPacket;
1212 typedef typename unpacket_traits<typename unpacket_traits<Packet>::half>::half QuarterPacket;
1213 typedef typename DataMapper::LinearMapper LinearMapper;
1215 PacketSize = packet_traits<Scalar>::size,
1216 HalfPacketSize = unpacket_traits<HalfPacket>::size,
1217 QuarterPacketSize = unpacket_traits<QuarterPacket>::size
1219 EIGEN_DONT_INLINE
void operator()(Scalar* blockB,
const DataMapper& rhs, Index depth, Index cols, Index stride = 0,
1220 Index offset = 0)
const {
1221 constexpr int nr = 8;
1222 EIGEN_ASM_COMMENT(
"EIGEN PRODUCT PACK RHS ROWMAJOR");
1223 EIGEN_UNUSED_VARIABLE(stride);
1224 EIGEN_UNUSED_VARIABLE(offset);
1225 eigen_assert(((!PanelMode) && stride == 0 && offset == 0) || (PanelMode && stride >= depth && offset <= stride));
1226 constexpr bool HasHalf = (int)HalfPacketSize < (
int)PacketSize;
1227 constexpr bool HasQuarter = (int)QuarterPacketSize < (
int)HalfPacketSize;
1228 conj_if<NumTraits<Scalar>::IsComplex && Conjugate> cj;
1229 Index packet_cols8 = nr >= 8 ? (cols / 8) * 8 : 0;
1230 Index packet_cols4 = nr >= 4 ? (cols / 4) * 4 : 0;
1233 EIGEN_IF_CONSTEXPR (nr >= 8) {
1234 for (Index j2 = 0; j2 < packet_cols8; j2 += 8) {
1236 EIGEN_IF_CONSTEXPR (PanelMode) count += 8 * offset;
1237 for (Index k = 0; k < depth; k++) {
1238 EIGEN_IF_CONSTEXPR (PacketSize == 8) {
1240 Packet A = rhs.template loadPacket<Packet>(k, j2);
1241 pstoreu(blockB + count, cj.pconj(A));
1242 }
else EIGEN_IF_CONSTEXPR (HasHalf && HalfPacketSize == 8) {
1243 HalfPacket A = rhs.template loadPacket<HalfPacket>(k, j2);
1244 pstoreu(blockB + count, cj.pconj(A));
1245 }
else EIGEN_IF_CONSTEXPR (HasQuarter && QuarterPacketSize == 8) {
1246 QuarterPacket A = rhs.template loadPacket<QuarterPacket>(k, j2);
1247 pstoreu(blockB + count, cj.pconj(A));
1248 }
else EIGEN_IF_CONSTEXPR (PacketSize == 4) {
1251 Packet A = rhs.template loadPacket<Packet>(k, j2);
1252 Packet B = rhs.template loadPacket<Packet>(k, j2 + PacketSize);
1253 pstoreu(blockB + count, cj.pconj(A));
1254 pstoreu(blockB + count + PacketSize, cj.pconj(B));
1257 const LinearMapper dm0 = rhs.getLinearMapper(k, j2);
1258 blockB[count + 0] = cj(dm0(0));
1259 blockB[count + 1] = cj(dm0(1));
1260 blockB[count + 2] = cj(dm0(2));
1261 blockB[count + 3] = cj(dm0(3));
1262 blockB[count + 4] = cj(dm0(4));
1263 blockB[count + 5] = cj(dm0(5));
1264 blockB[count + 6] = cj(dm0(6));
1265 blockB[count + 7] = cj(dm0(7));
1270 EIGEN_IF_CONSTEXPR (PanelMode) count += 8 * (stride - offset - depth);
1274 EIGEN_IF_CONSTEXPR (nr >= 4) {
1275 for (Index j2 = packet_cols8; j2 < packet_cols4; j2 += 4) {
1277 EIGEN_IF_CONSTEXPR (PanelMode) count += 4 * offset;
1278 for (Index k = 0; k < depth; k++) {
1279 EIGEN_IF_CONSTEXPR (PacketSize == 4) {
1280 Packet A = rhs.template loadPacket<Packet>(k, j2);
1281 pstoreu(blockB + count, cj.pconj(A));
1282 count += PacketSize;
1283 }
else EIGEN_IF_CONSTEXPR (HasHalf && HalfPacketSize == 4) {
1284 HalfPacket A = rhs.template loadPacket<HalfPacket>(k, j2);
1285 pstoreu(blockB + count, cj.pconj(A));
1286 count += HalfPacketSize;
1287 }
else EIGEN_IF_CONSTEXPR (HasQuarter && QuarterPacketSize == 4) {
1288 QuarterPacket A = rhs.template loadPacket<QuarterPacket>(k, j2);
1289 pstoreu(blockB + count, cj.pconj(A));
1290 count += QuarterPacketSize;
1292 const LinearMapper dm0 = rhs.getLinearMapper(k, j2);
1293 blockB[count + 0] = cj(dm0(0));
1294 blockB[count + 1] = cj(dm0(1));
1295 blockB[count + 2] = cj(dm0(2));
1296 blockB[count + 3] = cj(dm0(3));
1301 EIGEN_IF_CONSTEXPR (PanelMode) count += 4 * (stride - offset - depth);
1305 for (Index j2 = packet_cols4; j2 < cols; ++j2) {
1306 EIGEN_IF_CONSTEXPR (PanelMode) count += offset;
1307 for (Index k = 0; k < depth; k++) {
1308 blockB[count] = cj(rhs(k, j2));
1311 EIGEN_IF_CONSTEXPR (PanelMode) count += stride - offset - depth;
1316template <
typename Scalar,
typename Index,
typename DataMapper,
int mr,
bool ConjugateLhs,
bool ConjugateRhs>
1317struct gebp_kernel<Scalar, Scalar, Index, DataMapper, mr, 8, ConjugateLhs, ConjugateRhs> {
1318 EIGEN_ALWAYS_INLINE
void operator()(
const DataMapper& res,
const Scalar* blockA,
const Scalar* blockB, Index rows,
1319 Index depth, Index cols, Scalar alpha, Index strideA = -1, Index strideB = -1,
1320 Index offsetA = 0, Index offsetB = 0)
const;
1323template <
typename Scalar,
typename Index,
typename DataMapper,
int mr,
bool ConjugateLhs,
bool ConjugateRhs>
1324EIGEN_ALWAYS_INLINE
void gebp_kernel<Scalar, Scalar, Index, DataMapper, mr, 8, ConjugateLhs, ConjugateRhs>::operator()(
1325 const DataMapper& res,
const Scalar* blockA,
const Scalar* blockB, Index rows, Index depth, Index cols,
1326 Scalar alpha, Index strideA, Index strideB, Index offsetA, Index offsetB)
const {
1327 if (res.incr() == 1) {
1329 gemm_kern_avx512<Scalar, mr, 8, true, false, true>(rows, cols, depth, &alpha, blockA, blockB, (Scalar*)res.data(),
1330 res.stride(), res.incr(), strideA, strideB, offsetA, offsetB);
1332 gemm_kern_avx512<Scalar, mr, 8, false, false, true>(rows, cols, depth, &alpha, blockA, blockB,
1333 (Scalar*)res.data(), res.stride(), res.incr(), strideA,
1334 strideB, offsetA, offsetB);
1338 gemm_kern_avx512<Scalar, mr, 8, true, false, false>(rows, cols, depth, &alpha, blockA, blockB,
1339 (Scalar*)res.data(), res.stride(), res.incr(), strideA,
1340 strideB, offsetA, offsetB);
1342 gemm_kern_avx512<Scalar, mr, 8, false, false, false>(rows, cols, depth, &alpha, blockA, blockB,
1343 (Scalar*)res.data(), res.stride(), res.incr(), strideA,
1344 strideB, offsetA, offsetB);
@ ColMajor
Definition Constants.h:319
@ RowMajor
Definition Constants.h:321