submission 383784
macto · python · License unknown
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No package. Vendor the mirrored source: 1337 lines, June 9 Researcher Reciprocity License v1.0.
submission_13901_v3.py
curl "https://kernelindex.com/api/v1/implementations/kernelbot-modal-nvfp4-dual-gemm-383784?include=source"interfacepython
Compatibility
measured onNVIDIA B200
declared hardwareNVIDIA B200
architecturessm_100
dtypesfp8_e4m3, nvfp4
Benchmark evidence
1 measurement across 1 GPU, fastest first.
Operation / workload
Hardware
Latency
Rank
Observed
Reported · How evidence levels are derived →
Source and license
sourceavailable
revision digestsha256:d685e75320d9b709f7b4f54120ba76043e152a89e6e59d257e8a3e22a5e7e218
license declaredunknown
license concludedunknown
authorsmacto
imported2026-08-15
Techniques
Extracted from the mirrored source by pattern, never inferred. Each row cites its line.
cluster
__global__ __cluster_dims__(2, 1, 1) __launch_bounds__(BLOCK_M + 2 * WARP_SIZE)mbarrier
void mbarrier_init(int mbar_addr, int count) {shared-memory
void tma_3d_gmem2smem_mcast(int dst, const void *tmap_ptr, int x, int y, int z,tcgen05
asm volatile("tcgen05.cp.cta_group::2.32x128b.warpx4 [%0], %1;" :: "r"(taddr), "l"(s_desc));tile-n = 64
constexpr int BLOCK_N = 64;tma
"cp.async.bulk.tensor.3d.shared::cluster.global.mbarrier::complete_tx::bytes.cta_group::%6.L2::cache_hint "vector-width = half2
half2 silu_mul_h2(float x0, float x1, float y0, float y1) {Kernel source
submission_13901_v3.py1337 lines
#!POPCORN leaderboard modal_nvfp4_dual_gemm
#!POPCORN gpu B200
import torch
from task import input_t, output_t
from torch.utils.cpp_extension import load_inline
CUDA_SOURCE = r"""
#include <cudaTypedefs.h>
#include <cuda_fp16.h>
#include <cuda_fp8.h>
#include <torch/library.h>
#include <ATen/core/Tensor.h>
#include <cstdint>
#include <unordered_map>
constexpr int WARP_SIZE = 32;
constexpr int MMA_K = 64;
// L2 Cache Hints
constexpr uint64_t EVICT_FIRST = 0x12F0000000000000ULL;
constexpr uint64_t EVICT_LAST = 0x14F0000000000000ULL;
constexpr uint64_t EVICT_NORMAL = 0x1000000000000000ULL;
__device__ __forceinline__
constexpr uint64_t desc_encode(uint64_t x) {
return (x & 0x3'FFFFULL) >> 4ULL;
}
// SiLU helper: expf-based approximation in FP32, then multiply by y.
__device__ __forceinline__
half2 silu_mul_h2(float x0, float x1, float y0, float y1) {
const float2 x = make_float2(x0, x1);
const float2 y = make_float2(y0, y1);
const float2 e = make_float2(
__expf(-x.x),
__expf(-x.y)
);
const float2 s = make_float2(
__fdividef(x.x, 1.0f + e.x),
__fdividef(x.y, 1.0f + e.y)
);
const float2 p = __fmul2_rn(s, y);
return __float22half2_rn(p);
}
__device__ __forceinline__ uint32_t bitcast_u32(half2 h) {
union {
half2 h;
uint32_t u;
} x;
x.h = h;
return x.u;
}
__device__ __forceinline__
void stg_32b(const void* dst, unsigned long long v0, unsigned long long v1,
unsigned long long v2, unsigned long long v3) {
asm volatile(
"st.global.v4.b64 [%0], {%1, %2, %3, %4};"
:: "l"(dst), "l"(v0), "l"(v1), "l"(v2), "l"(v3)
: "memory"
);
}
__device__ __forceinline__
uint32_t elect_sync() {
uint32_t pred = 0;
asm volatile(
"{\n\t"
".reg .pred %%px;\n\t"
"elect.sync _|%%px, %1;\n\t"
"@%%px mov.s32 %0, 1;\n\t"
"}"
: "+r"(pred)
: "r"(0xFFFFFFFF)
);
return pred;
}
__device__ __forceinline__
void mbarrier_init(int mbar_addr, int count) {
asm volatile("mbarrier.init.shared::cta.b64 [%0], %1;" :: "r"(mbar_addr), "r"(count));
}
__device__ __forceinline__
void mbarrier_wait(int mbar_addr, int phase) {
uint32_t ticks = 0x989680;
asm volatile(
"{\n\t"
".reg .pred P1;\n\t"
"LAB_WAIT:\n\t"
"mbarrier.try_wait.parity.acquire.cta.shared::cta.b64 P1, [%0], %1, %2;\n\t"
"@P1 bra.uni DONE;\n\t"
"bra.uni LAB_WAIT;\n\t"
"DONE:\n\t"
"}"
:: "r"(mbar_addr), "r"(phase), "r"(ticks)
);
}
__device__ __forceinline__
void mbarrier_wait_relaxed(int mbar_addr, int phase) {
uint32_t ticks = 0x989680;
asm volatile(
"{\n\t"
".reg .pred P1;\n\t"
"LAB_WAIT_RELAX:\n\t"
"mbarrier.try_wait.parity.relaxed.cta.shared::cta.b64 P1, [%0], %1, %2;\n\t"
"@P1 bra.uni DONE_RELAX;\n\t"
"bra.uni LAB_WAIT_RELAX;\n\t"
"DONE_RELAX:\n\t"
"}"
:: "r"(mbar_addr), "r"(phase), "r"(ticks)
);
}
template <int CTA_GROUP>
__device__ __forceinline__
void tma_3d_gmem2smem(int dst, const void *tmap_ptr, int x, int y, int z, int mbar_addr, uint64_t cache_policy) {
asm volatile(
"cp.async.bulk.tensor.3d.shared::cluster.global.mbarrier::complete_tx::bytes.cta_group::%6.L2::cache_hint "
"[%0], [%1, {%2, %3, %4}], [%5], %7;"
:: "r"(dst), "l"(tmap_ptr), "r"(x), "r"(y), "r"(z),
"r"(mbar_addr), "n"(CTA_GROUP), "l"(cache_policy)
: "memory"
);
}
template <int CTA_GROUP>
__device__ __forceinline__
void tma_3d_gmem2smem_mcast(int dst, const void *tmap_ptr, int x, int y, int z,
int mbar_addr, uint16_t cta_mask, uint64_t cache_policy) {
asm volatile(
"cp.async.bulk.tensor.3d.shared::cluster.global.mbarrier::complete_tx::bytes.multicast::cluster.cta_group::%6.L2::cache_hint "
"[%0], [%1, {%2, %3, %4}], [%5], %7, %8;"
:: "r"(dst), "l"(tmap_ptr), "r"(x), "r"(y), "r"(z),
"r"(mbar_addr), "n"(CTA_GROUP), "h"(cta_mask), "l"(cache_policy)
: "memory"
);
}
__device__ __forceinline__
void tcgen05_cp_cta2(int taddr, uint64_t s_desc) {
asm volatile("tcgen05.cp.cta_group::2.32x128b.warpx4 [%0], %1;" :: "r"(taddr), "l"(s_desc));
}
__device__ __forceinline__
void tcgen05_mma_cta2(
int d_tmem,
uint64_t a_desc,
uint64_t b_desc,
uint32_t i_desc,
int scale_A_tmem,
int scale_B_tmem,
int enable_input_d
) {
asm volatile(
"{\n\t"
".reg .pred p;\n\t"
"setp.ne.b32 p, %6, 0;\n\t"
"tcgen05.mma.cta_group::2.kind::mxf4nvf4.block_scale.block16 "
"[%0], %1, %2, %3, [%4], [%5], p;\n\t"
"}"
:: "r"(d_tmem), "l"(a_desc), "l"(b_desc), "r"(i_desc),
"r"(scale_A_tmem), "r"(scale_B_tmem), "r"(enable_input_d)
);
}
__device__ __forceinline__
void tcgen05_mma_cta2_collector_fill(
int d_tmem,
uint64_t a_desc,
uint64_t b_desc,
uint32_t i_desc,
int scale_A_tmem,
int scale_B_tmem,
int enable_input_d
) {
asm volatile(
"{\n\t"
".reg .pred p;\n\t"
"setp.ne.b32 p, %6, 0;\n\t"
"tcgen05.mma.cta_group::2.kind::mxf4nvf4.block_scale.block16.collector::a::fill "
"[%0], %1, %2, %3, [%4], [%5], p;\n\t"
"}"
:: "r"(d_tmem), "l"(a_desc), "l"(b_desc), "r"(i_desc),
"r"(scale_A_tmem), "r"(scale_B_tmem), "r"(enable_input_d)
);
}
__device__ __forceinline__
void tcgen05_mma_cta2_collector_lastuse(
int d_tmem,
uint64_t a_desc,
uint64_t b_desc,
uint32_t i_desc,
int scale_A_tmem,
int scale_B_tmem,
int enable_input_d
) {
asm volatile(
"{\n\t"
".reg .pred p;\n\t"
"setp.ne.b32 p, %6, 0;\n\t"
"tcgen05.mma.cta_group::2.kind::mxf4nvf4.block_scale.block16.collector::a::lastuse "
"[%0], %1, %2, %3, [%4], [%5], p;\n\t"
"}"
:: "r"(d_tmem), "l"(a_desc), "l"(b_desc), "r"(i_desc),
"r"(scale_A_tmem), "r"(scale_B_tmem), "r"(enable_input_d)
);
}
__device__ __forceinline__
void tcgen05_ld_32x32bx8(float *tmp, int addr) {
asm volatile(
"tcgen05.ld.sync.aligned.32x32b.x8.b32 "
"{%0, %1, %2, %3, %4, %5, %6, %7}, [%8];"
: "=f"(tmp[0]), "=f"(tmp[1]), "=f"(tmp[2]), "=f"(tmp[3]),
"=f"(tmp[4]), "=f"(tmp[5]), "=f"(tmp[6]), "=f"(tmp[7])
: "r"(addr)
);
}
// ---------------- TensorMap creation ----------------
void check_cu(CUresult err) {
if (err == CUDA_SUCCESS) return;
const char *error_msg_ptr;
if (cuGetErrorString(err, &error_msg_ptr) != CUDA_SUCCESS)
error_msg_ptr = "unable to get error string";
TORCH_CHECK(false, "cuTensorMapEncodeTiled error: ", error_msg_ptr);
}
void init_AB_tmap(
CUtensorMap *tmap,
const char *ptr,
uint64_t global_height,
uint64_t global_width,
uint32_t shared_height,
uint32_t shared_width
) {
constexpr uint32_t rank = 3;
uint64_t globalDim[rank] = {256, global_height, global_width / 256};
uint64_t globalStrides[rank-1] = {global_width / 2, 128};
uint32_t boxDim[rank] = {256, shared_height, shared_width / 256};
uint32_t elementStrides[rank] = {1, 1, 1};
auto err = cuTensorMapEncodeTiled(
tmap,
CUtensorMapDataType::CU_TENSOR_MAP_DATA_TYPE_16U4_ALIGN8B,
rank,
(void *)ptr,
globalDim,
globalStrides,
boxDim,
elementStrides,
CUtensorMapInterleave::CU_TENSOR_MAP_INTERLEAVE_NONE,
CUtensorMapSwizzle::CU_TENSOR_MAP_SWIZZLE_128B,
CUtensorMapL2promotion::CU_TENSOR_MAP_L2_PROMOTION_NONE,
CUtensorMapFloatOOBfill::CU_TENSOR_MAP_FLOAT_OOB_FILL_NONE
);
check_cu(err);
}
void init_SF_tmap(
CUtensorMap *tmap,
const char *ptr,
uint64_t mn,
uint64_t K,
uint32_t block_k
) {
constexpr uint32_t rank = 3;
const uint64_t k_blocks = K / 64;
const uint64_t mn_blocks = mn / 128;
const uint32_t tile_k_blocks = block_k / 64;
constexpr uint64_t SF_BLOCK_BYTES = 512;
constexpr uint64_t X_ELEMS = SF_BLOCK_BYTES / sizeof(uint16_t);
uint64_t globalDim[rank] = {X_ELEMS, mn_blocks, k_blocks};
uint64_t globalStrides[rank-1] = {k_blocks * SF_BLOCK_BYTES, SF_BLOCK_BYTES};
uint32_t boxDim[rank] = {(uint32_t)X_ELEMS, 1, tile_k_blocks};
uint32_t elementStrides[rank] = {1, 1, 1};
auto err = cuTensorMapEncodeTiled(
tmap,
CUtensorMapDataType::CU_TENSOR_MAP_DATA_TYPE_UINT16,
rank,
(void *)ptr,
globalDim,
globalStrides,
boxDim,
elementStrides,
CUtensorMapInterleave::CU_TENSOR_MAP_INTERLEAVE_NONE,
CUtensorMapSwizzle::CU_TENSOR_MAP_SWIZZLE_NONE,
CUtensorMapL2promotion::CU_TENSOR_MAP_L2_PROMOTION_NONE,
CUtensorMapFloatOOBfill::CU_TENSOR_MAP_FLOAT_OOB_FILL_NONE
);
check_cu(err);
}
// Cache cuTensorMapEncodeTiled() results keyed by (ptr + shape/tile params).
struct ABKey {
uint64_t ptr;
uint32_t global_h;
uint32_t global_w;
uint32_t shared_h;
uint32_t shared_w;
};
struct SFKey {
uint64_t ptr;
uint32_t mn;
uint32_t K;
uint32_t block_k;
};
static inline uint64_t fnv1a_u64(uint64_t h, uint64_t v) {
h ^= v;
h *= 1099511628211ULL;
return h;
}
struct ABKeyHash {
size_t operator()(ABKey const& k) const noexcept {
uint64_t h = 1469598103934665603ULL;
h = fnv1a_u64(h, k.ptr);
h = fnv1a_u64(h, (uint64_t(k.global_h) << 32) | uint64_t(k.global_w));
h = fnv1a_u64(h, (uint64_t(k.shared_h) << 32) | uint64_t(k.shared_w));
return (size_t)h;
}
};
struct ABKeyEq {
bool operator()(ABKey const& a, ABKey const& b) const noexcept {
return a.ptr == b.ptr
&& a.global_h == b.global_h
&& a.global_w == b.global_w
&& a.shared_h == b.shared_h
&& a.shared_w == b.shared_w;
}
};
struct SFKeyHash {
size_t operator()(SFKey const& k) const noexcept {
uint64_t h = 1469598103934665603ULL;
h = fnv1a_u64(h, k.ptr);
h = fnv1a_u64(h, (uint64_t(k.mn) << 32) | uint64_t(k.K));
h = fnv1a_u64(h, uint64_t(k.block_k));
return (size_t)h;
}
};
struct SFKeyEq {
bool operator()(SFKey const& a, SFKey const& b) const noexcept {
return a.ptr == b.ptr && a.mn == b.mn && a.K == b.K && a.block_k == b.block_k;
}
};
static std::unordered_map<ABKey, CUtensorMap, ABKeyHash, ABKeyEq> g_ab_cache;
static std::unordered_map<SFKey, CUtensorMap, SFKeyHash, SFKeyEq> g_sf_cache;
static inline const CUtensorMap& get_ab_tmap_cached(
const char* ptr, uint32_t global_h, uint32_t global_w, uint32_t shared_h, uint32_t shared_w
) {
ABKey key{(uint64_t)ptr, global_h, global_w, shared_h, shared_w};
auto it = g_ab_cache.find(key);
if (it != g_ab_cache.end()) return it->second;
CUtensorMap tmp{};
init_AB_tmap(&tmp, ptr, global_h, global_w, shared_h, shared_w);
auto ins = g_ab_cache.emplace(key, tmp);
return ins.first->second;
}
static inline const CUtensorMap& get_sf_tmap_cached(
const char* ptr, uint32_t mn, uint32_t K, uint32_t block_k
) {
SFKey key{(uint64_t)ptr, mn, K, block_k};
auto it = g_sf_cache.find(key);
if (it != g_sf_cache.end()) return it->second;
CUtensorMap tmp{};
init_SF_tmap(&tmp, ptr, mn, K, block_k);
auto ins = g_sf_cache.emplace(key, tmp);
return ins.first->second;
}
// ============================================================================
// N=64 collector kernel (M=256 path)
// ============================================================================
template <int BLOCK_M, int BLOCK_K, int NUM_STAGES>
__global__ __cluster_dims__(2, 1, 1) __launch_bounds__(BLOCK_M + 2 * WARP_SIZE)
void dual_gemm_cta2_collector_n64_kernel(
const __grid_constant__ CUtensorMap A_tmap,
const __grid_constant__ CUtensorMap B1_tmap,
const __grid_constant__ CUtensorMap B2_tmap,
const __grid_constant__ CUtensorMap SFA_tmap,
const __grid_constant__ CUtensorMap SFB1_tmap,
const __grid_constant__ CUtensorMap SFB2_tmap,
half *C_ptr,
int M, int N, int K
) {
constexpr int CTA_GROUP = 2;
constexpr int BLOCK_N = 64;
constexpr int HALF_BLOCK_N = BLOCK_N / CTA_GROUP;
constexpr int NUM_WARPS = BLOCK_M / WARP_SIZE + 2;
const int tid = threadIdx.x;
const int bid = blockIdx.x;
const int warp_id = tid / WARP_SIZE;
int cta_rank;
asm volatile("mov.b32 %0, %%cluster_ctarank;" : "=r"(cta_rank));
const int cluster_pid = bid / CTA_GROUP;
const int grid_n_clusters = N / BLOCK_N;
const int cluster_m = cluster_pid / grid_n_clusters;
const int cluster_n = cluster_pid % grid_n_clusters;
const int off_m = cluster_m * (BLOCK_M * CTA_GROUP) + cta_rank * BLOCK_M;
const int off_n = cluster_n * BLOCK_N;
const int sf_y_A = off_m / 128;
const int sf_y_B = off_n / 128;
const int B_col_offset = off_n + cta_rank * HALF_BLOCK_N;
extern __shared__ __align__(1024) char smem_ptr[];
const int smem = static_cast<int>(__cvta_generic_to_shared(smem_ptr));
constexpr int A_size = BLOCK_M * BLOCK_K / 2;
constexpr int B1_size = HALF_BLOCK_N * BLOCK_K / 2;
constexpr int B2_size = HALF_BLOCK_N * BLOCK_K / 2;
constexpr int SFA_size = 128 * BLOCK_K / 16;
constexpr int SFB1_size = 128 * BLOCK_K / 16;
constexpr int SFB2_size = 128 * BLOCK_K / 16;
constexpr int STAGE_SIZE = A_size + B1_size + B2_size + SFA_size + SFB1_size + SFB2_size;
#pragma nv_diag_suppress static_var_with_dynamic_init
__shared__ uint64_t mbars[NUM_STAGES * 2 + 1];
__shared__ int tmem_addr[1];
const int tma_mbar_addr = static_cast<int>(__cvta_generic_to_shared(mbars));
const int mma_mbar_addr = tma_mbar_addr + NUM_STAGES * 8;
const int mainloop_mbar_addr = mma_mbar_addr + NUM_STAGES * 8;
constexpr int ACC_BASE = 0;
constexpr int ACC1_OFF = 0;
constexpr int ACC2_OFF = BLOCK_N;
constexpr int SFA_COLS_PER_K = 8;
constexpr int SFB_COLS_PER_K = 4;
constexpr int SFA_tmem = 2 * BLOCK_N;
constexpr int SFB1_tmem = SFA_tmem + SFA_COLS_PER_K * (BLOCK_K / MMA_K);
constexpr int SFB2_tmem = SFB1_tmem + SFB_COLS_PER_K * (BLOCK_K / MMA_K);
constexpr int TOTAL_TMEM_COLS = 256;
if (warp_id == 0 && elect_sync()) {
for (int i = 0; i < NUM_STAGES; i++) {
mbarrier_init(tma_mbar_addr + i * 8, CTA_GROUP);
mbarrier_init(mma_mbar_addr + i * 8, 1);
}
mbarrier_init(mainloop_mbar_addr, 1);
asm volatile("fence.mbarrier_init.release.cluster;");
} else if (warp_id == 1) {
const int addr = static_cast<int>(__cvta_generic_to_shared(tmem_addr));
asm volatile("tcgen05.alloc.cta_group::2.sync.aligned.shared::cta.b32 [%0], %1;"
:: "r"(addr), "r"(TOTAL_TMEM_COLS));
}
asm volatile("bar.sync 1, %0;" :: "r"(64) : "memory");
const int taddr = tmem_addr[0];
constexpr uint32_t i_desc = (1U << 7U) | (1U << 10U) | ((uint32_t)BLOCK_N >> 3U << 17U) | (2U << 27U);
constexpr int SBO_AB = 8 * 128;
constexpr int SBO_SF = 8 * 16;
constexpr uint64_t AB_desc_base = (desc_encode(SBO_AB) << 32ULL) | (1ULL << 46ULL) | (2ULL << 61ULL);
constexpr uint64_t SF_desc_base = (desc_encode(SBO_SF) << 32ULL) | (1ULL << 46ULL);
const int num_iters = K / BLOCK_K;
constexpr uint64_t cache_A = EVICT_FIRST;
constexpr uint64_t cache_B = EVICT_FIRST;
if (warp_id == NUM_WARPS - 2 && elect_sync()) {
int tma_stage = 0;
int mma_phase = 1;
int it = 0;
for (int iter_k = 0; iter_k < num_iters; iter_k++, it++) {
if (it >= NUM_STAGES)
mbarrier_wait_relaxed(mma_mbar_addr + tma_stage * 8, mma_phase);
const int mbar_addr = (tma_mbar_addr + tma_stage * 8) & 0xFEFFFFFF;
const int base_smem = smem + tma_stage * STAGE_SIZE;
const int A_smem = base_smem;
const int B1_smem = base_smem + A_size;
const int B2_smem = B1_smem + B1_size;
const int SFA_smem = base_smem + A_size + B1_size + B2_size;
const int SFB1_smem = SFA_smem + SFA_size;
const int SFB2_smem = SFB1_smem + SFB1_size;
constexpr int TENSOR_TMA_SIZE = A_size + B1_size + B2_size;
const int SF_TMA_SIZE = SFA_size + ((cta_rank == 0) ? (CTA_GROUP * (SFB1_size + SFB2_size)) : 0);
const int TOTAL_TMA_SIZE = TENSOR_TMA_SIZE + SF_TMA_SIZE;
asm volatile("mbarrier.arrive.expect_tx.release.cta.shared::cluster.b64 _, [%0], %1;"
:: "r"(mbar_addr), "r"(TOTAL_TMA_SIZE) : "memory");
const int z_ab = iter_k * (BLOCK_K / 256);
const int z_sf = iter_k * (BLOCK_K / 64);
// (kept as-is from current submission_13901.py)
tma_3d_gmem2smem<CTA_GROUP>(B2_smem, &B2_tmap, 0, B_col_offset, z_ab, mbar_addr, cache_B);
tma_3d_gmem2smem<CTA_GROUP>(B1_smem, &B1_tmap, 0, B_col_offset, z_ab, mbar_addr, cache_B);
tma_3d_gmem2smem<CTA_GROUP>(A_smem, &A_tmap, 0, off_m, z_ab, mbar_addr, cache_A);
if (cta_rank == 0) {
constexpr uint16_t cta_mask = (1u << CTA_GROUP) - 1u;
tma_3d_gmem2smem_mcast<CTA_GROUP>(SFB1_smem, &SFB1_tmap, 0, sf_y_B, z_sf, mbar_addr, cta_mask, cache_B);
tma_3d_gmem2smem_mcast<CTA_GROUP>(SFB2_smem, &SFB2_tmap, 0, sf_y_B, z_sf, mbar_addr, cta_mask, cache_B);
}
tma_3d_gmem2smem<CTA_GROUP>(SFA_smem, &SFA_tmap, 0, sf_y_A, z_sf, mbar_addr, cache_A);
tma_stage = (tma_stage + 1) % NUM_STAGES;
if (tma_stage == 0) mma_phase ^= 1;
}
} else if (cta_rank == 0 && warp_id == NUM_WARPS - 1 && elect_sync()) {
int tma_stage = 0;
int tma_phase = 0;
constexpr int16_t cta_mask = (1 << CTA_GROUP) - 1;
const int scale_B_base_off = (cluster_n & 1) * (BLOCK_N / 32);
for (int iter_k = 0; iter_k < num_iters; iter_k++) {
mbarrier_wait(tma_mbar_addr + tma_stage * 8, tma_phase);
const int base_smem = smem + tma_stage * STAGE_SIZE;
const int A_smem = base_smem;
const int B1_smem = base_smem + A_size;
const int B2_smem = B1_smem + B1_size;
const int SFA_smem = base_smem + A_size + B1_size + B2_size;
const int SFB1_smem = SFA_smem + SFA_size;
const int SFB2_smem = SFB1_smem + SFB1_size;
const uint64_t SFA_desc = SF_desc_base + ((uint64_t)SFA_smem >> 4ULL);
const uint64_t SFB1_desc = SF_desc_base + ((uint64_t)SFB1_smem >> 4ULL);
const uint64_t SFB2_desc = SF_desc_base + ((uint64_t)SFB2_smem >> 4ULL);
constexpr int SF_ITERS = BLOCK_K / MMA_K;
constexpr int MMA_ITERS = BLOCK_K / MMA_K;
constexpr int HALF = (SF_ITERS > 1) ? (SF_ITERS / 2) : 1;
uint64_t a_descs[MMA_ITERS];
uint64_t b1_descs[MMA_ITERS];
uint64_t b2_descs[MMA_ITERS];
#pragma unroll
for (int k2 = 0; k2 < MMA_ITERS; k2++) {
const int off = k2 * 32;
a_descs[k2] = AB_desc_base + desc_encode(A_smem + off);
b1_descs[k2] = AB_desc_base + desc_encode(B1_smem + off);
b2_descs[k2] = AB_desc_base + desc_encode(B2_smem + off);
}
const int scale_A_base = SFA_tmem;
const int scale_B1_base = SFB1_tmem + scale_B_base_off;
const int scale_B2_base = SFB2_tmem + scale_B_base_off;
// (kept as-is from current submission_13901.py)
#pragma unroll
for (int k = 0; k < HALF; k++) {
tcgen05_cp_cta2(SFA_tmem + k * SFA_COLS_PER_K, SFA_desc + (uint64_t)k * 32ULL);
tcgen05_cp_cta2(SFB1_tmem + k * SFB_COLS_PER_K, SFB1_desc + (uint64_t)k * 32ULL);
tcgen05_cp_cta2(SFB2_tmem + k * SFB_COLS_PER_K, SFB2_desc + (uint64_t)k * 32ULL);
}
#pragma unroll
for (int k2 = 0; k2 < HALF; k2++) {
const uint64_t a_desc = a_descs[k2];
const uint64_t b1_desc = b1_descs[k2];
const uint64_t b2_desc = b2_descs[k2];
const int k_sf = k2;
const int scale_A = scale_A_base + k_sf * SFA_COLS_PER_K;
const int scale_B1 = scale_B1_base + k_sf * SFB_COLS_PER_K;
const int scale_B2 = scale_B2_base + k_sf * SFB_COLS_PER_K;
const int enable_d = (k2 == 0) ? iter_k : 1;
tcgen05_mma_cta2_collector_fill(ACC_BASE + ACC1_OFF, a_desc, b1_desc, i_desc, scale_A, scale_B1, enable_d);
tcgen05_mma_cta2_collector_lastuse(ACC_BASE + ACC2_OFF, a_desc, b2_desc, i_desc, scale_A, scale_B2, enable_d);
}
#pragma unroll
for (int k = HALF; k < SF_ITERS; k++) {
tcgen05_cp_cta2(SFA_tmem + k * SFA_COLS_PER_K, SFA_desc + (uint64_t)k * 32ULL);
tcgen05_cp_cta2(SFB1_tmem + k * SFB_COLS_PER_K, SFB1_desc + (uint64_t)k * 32ULL);
tcgen05_cp_cta2(SFB2_tmem + k * SFB_COLS_PER_K, SFB2_desc + (uint64_t)k * 32ULL);
}
#pragma unroll
for (int k2 = HALF; k2 < MMA_ITERS; k2++) {
const uint64_t a_desc = a_descs[k2];
const uint64_t b1_desc = b1_descs[k2];
const uint64_t b2_desc = b2_descs[k2];
const int k_sf = k2;
const int scale_A = scale_A_base + k_sf * SFA_COLS_PER_K;
const int scale_B1 = scale_B1_base + k_sf * SFB_COLS_PER_K;
const int scale_B2 = scale_B2_base + k_sf * SFB_COLS_PER_K;
const int enable_d = 1;
tcgen05_mma_cta2_collector_fill(ACC_BASE + ACC1_OFF, a_desc, b1_desc, i_desc, scale_A, scale_B1, enable_d);
tcgen05_mma_cta2_collector_lastuse(ACC_BASE + ACC2_OFF, a_desc, b2_desc, i_desc, scale_A, scale_B2, enable_d);
}
asm volatile("tcgen05.commit.cta_group::2.mbarrier::arrive::one.shared::cluster.multicast::cluster.b64 [%0], %1;"
:: "r"(mma_mbar_addr + tma_stage * 8), "h"(cta_mask) : "memory");
tma_stage = (tma_stage + 1) % NUM_STAGES;
if (tma_stage == 0) tma_phase ^= 1;
}
asm volatile("tcgen05.commit.cta_group::2.mbarrier::arrive::one.shared::cluster.multicast::cluster.b64 [%0], %1;"
:: "r"(mainloop_mbar_addr), "h"(cta_mask) : "memory");
} else if (warp_id < 4) {
mbarrier_wait(mainloop_mbar_addr, 0);
asm volatile("tcgen05.fence::after_thread_sync;");
if (tid < BLOCK_M) {
constexpr int WIDTH = 64;
const int tmem_row = cta_rank * 128 + warp_id * 32;
half* row_ptr = C_ptr + (off_m + tid) * N + off_n;
const int row_base1 = taddr + (tmem_row << 16) + (ACC_BASE + ACC1_OFF);
const int row_base2 = taddr + (tmem_row << 16) + (ACC_BASE + ACC2_OFF);
// Epilogue pipelined: overlap tcgen05.ld for next chunk with compute/store.
float acc1a[16], acc2a[16];
float acc1b[16], acc2b[16];
// Base 0 -> A
tcgen05_ld_32x32bx8(acc1a + 0, row_base1 + 0);
tcgen05_ld_32x32bx8(acc1a + 8, row_base1 + 8);
tcgen05_ld_32x32bx8(acc2a + 0, row_base2 + 0);
tcgen05_ld_32x32bx8(acc2a + 8, row_base2 + 8);
// Base 0
asm volatile("tcgen05.wait::ld.sync.aligned;");
// Prefetch base 16 -> B
tcgen05_ld_32x32bx8(acc1b + 0, row_base1 + 16);
tcgen05_ld_32x32bx8(acc1b + 8, row_base1 + 24);
tcgen05_ld_32x32bx8(acc2b + 0, row_base2 + 16);
tcgen05_ld_32x32bx8(acc2b + 8, row_base2 + 24);
{
half2 h0 = silu_mul_h2(acc1a[0], acc1a[1], acc2a[0], acc2a[1]);
half2 h1 = silu_mul_h2(acc1a[2], acc1a[3], acc2a[2], acc2a[3]);
half2 h2 = silu_mul_h2(acc1a[4], acc1a[5], acc2a[4], acc2a[5]);
half2 h3 = silu_mul_h2(acc1a[6], acc1a[7], acc2a[6], acc2a[7]);
half2 h4 = silu_mul_h2(acc1a[8], acc1a[9], acc2a[8], acc2a[9]);
half2 h5 = silu_mul_h2(acc1a[10], acc1a[11], acc2a[10], acc2a[11]);
half2 h6 = silu_mul_h2(acc1a[12], acc1a[13], acc2a[12], acc2a[13]);
half2 h7 = silu_mul_h2(acc1a[14], acc1a[15], acc2a[14], acc2a[15]);
const uint32_t u0 = bitcast_u32(h0);
const uint32_t u1 = bitcast_u32(h1);
const uint32_t u2 = bitcast_u32(h2);
const uint32_t u3 = bitcast_u32(h3);
const uint32_t u4 = bitcast_u32(h4);
const uint32_t u5 = bitcast_u32(h5);
const uint32_t u6 = bitcast_u32(h6);
const uint32_t u7 = bitcast_u32(h7);
const unsigned long long q0 = (unsigned long long)u0 | ((unsigned long long)u1 << 32);
const unsigned long long q1 = (unsigned long long)u2 | ((unsigned long long)u3 << 32);
const unsigned long long q2 = (unsigned long long)u4 | ((unsigned long long)u5 << 32);
const unsigned long long q3 = (unsigned long long)u6 | ((unsigned long long)u7 << 32);
stg_32b((const void*)(row_ptr + 0), q0, q1, q2, q3);
}
// Base 16
asm volatile("tcgen05.wait::ld.sync.aligned;");
// Prefetch base 32 -> A
tcgen05_ld_32x32bx8(acc1a + 0, row_base1 + 32);
tcgen05_ld_32x32bx8(acc1a + 8, row_base1 + 40);
tcgen05_ld_32x32bx8(acc2a + 0, row_base2 + 32);
tcgen05_ld_32x32bx8(acc2a + 8, row_base2 + 40);
{
half2 h0 = silu_mul_h2(acc1b[0], acc1b[1], acc2b[0], acc2b[1]);
half2 h1 = silu_mul_h2(acc1b[2], acc1b[3], acc2b[2], acc2b[3]);
half2 h2 = silu_mul_h2(acc1b[4], acc1b[5], acc2b[4], acc2b[5]);
half2 h3 = silu_mul_h2(acc1b[6], acc1b[7], acc2b[6], acc2b[7]);
half2 h4 = silu_mul_h2(acc1b[8], acc1b[9], acc2b[8], acc2b[9]);
half2 h5 = silu_mul_h2(acc1b[10], acc1b[11], acc2b[10], acc2b[11]);
half2 h6 = silu_mul_h2(acc1b[12], acc1b[13], acc2b[12], acc2b[13]);
half2 h7 = silu_mul_h2(acc1b[14], acc1b[15], acc2b[14], acc2b[15]);
const uint32_t u0 = bitcast_u32(h0);
const uint32_t u1 = bitcast_u32(h1);
const uint32_t u2 = bitcast_u32(h2);
const uint32_t u3 = bitcast_u32(h3);
const uint32_t u4 = bitcast_u32(h4);
const uint32_t u5 = bitcast_u32(h5);
const uint32_t u6 = bitcast_u32(h6);
const uint32_t u7 = bitcast_u32(h7);
const unsigned long long q0 = (unsigned long long)u0 | ((unsigned long long)u1 << 32);
const unsigned long long q1 = (unsigned long long)u2 | ((unsigned long long)u3 << 32);
const unsigned long long q2 = (unsigned long long)u4 | ((unsigned long long)u5 << 32);
const unsigned long long q3 = (unsigned long long)u6 | ((unsigned long long)u7 << 32);
stg_32b((const void*)(row_ptr + 16), q0, q1, q2, q3);
}
// Base 32
asm volatile("tcgen05.wait::ld.sync.aligned;");
// Prefetch base 48 -> B
tcgen05_ld_32x32bx8(acc1b + 0, row_base1 + 48);
tcgen05_ld_32x32bx8(acc1b + 8, row_base1 + 56);
tcgen05_ld_32x32bx8(acc2b + 0, row_base2 + 48);
tcgen05_ld_32x32bx8(acc2b + 8, row_base2 + 56);
{
half2 h0 = silu_mul_h2(acc1a[0], acc1a[1], acc2a[0], acc2a[1]);
half2 h1 = silu_mul_h2(acc1a[2], acc1a[3], acc2a[2], acc2a[3]);
half2 h2 = silu_mul_h2(acc1a[4], acc1a[5], acc2a[4], acc2a[5]);
half2 h3 = silu_mul_h2(acc1a[6], acc1a[7], acc2a[6], acc2a[7]);
half2 h4 = silu_mul_h2(acc1a[8], acc1a[9], acc2a[8], acc2a[9]);
half2 h5 = silu_mul_h2(acc1a[10], acc1a[11], acc2a[10], acc2a[11]);
half2 h6 = silu_mul_h2(acc1a[12], acc1a[13], acc2a[12], acc2a[13]);
half2 h7 = silu_mul_h2(acc1a[14], acc1a[15], acc2a[14], acc2a[15]);
const uint32_t u0 = bitcast_u32(h0);
const uint32_t u1 = bitcast_u32(h1);
const uint32_t u2 = bitcast_u32(h2);
const uint32_t u3 = bitcast_u32(h3);
const uint32_t u4 = bitcast_u32(h4);
const uint32_t u5 = bitcast_u32(h5);
const uint32_t u6 = bitcast_u32(h6);
const uint32_t u7 = bitcast_u32(h7);
const unsigned long long q0 = (unsigned long long)u0 | ((unsigned long long)u1 << 32);
const unsigned long long q1 = (unsigned long long)u2 | ((unsigned long long)u3 << 32);
const unsigned long long q2 = (unsigned long long)u4 | ((unsigned long long)u5 << 32);
const unsigned long long q3 = (unsigned long long)u6 | ((unsigned long long)u7 << 32);
stg_32b((const void*)(row_ptr + 32), q0, q1, q2, q3);
}
// Base 48
asm volatile("tcgen05.wait::ld.sync.aligned;");
{
half2 h0 = silu_mul_h2(acc1b[0], acc1b[1], acc2b[0], acc2b[1]);
half2 h1 = silu_mul_h2(acc1b[2], acc1b[3], acc2b[2], acc2b[3]);
half2 h2 = silu_mul_h2(acc1b[4], acc1b[5], acc2b[4], acc2b[5]);
half2 h3 = silu_mul_h2(acc1b[6], acc1b[7], acc2b[6], acc2b[7]);
half2 h4 = silu_mul_h2(acc1b[8], acc1b[9], acc2b[8], acc2b[9]);
half2 h5 = silu_mul_h2(acc1b[10], acc1b[11], acc2b[10], acc2b[11]);
half2 h6 = silu_mul_h2(acc1b[12], acc1b[13], acc2b[12], acc2b[13]);
half2 h7 = silu_mul_h2(acc1b[14], acc1b[15], acc2b[14], acc2b[15]);
const uint32_t u0 = bitcast_u32(h0);
const uint32_t u1 = bitcast_u32(h1);
const uint32_t u2 = bitcast_u32(h2);
const uint32_t u3 = bitcast_u32(h3);
const uint32_t u4 = bitcast_u32(h4);
const uint32_t u5 = bitcast_u32(h5);
const uint32_t u6 = bitcast_u32(h6);
const uint32_t u7 = bitcast_u32(h7);
const unsigned long long q0 = (unsigned long long)u0 | ((unsigned long long)u1 << 32);
const unsigned long long q1 = (unsigned long long)u2 | ((unsigned long long)u3 << 32);
const unsigned long long q2 = (unsigned long long)u4 | ((unsigned long long)u5 << 32);
const unsigned long long q3 = (unsigned long long)u6 | ((unsigned long long)u7 << 32);
stg_32b((const void*)(row_ptr + 48), q0, q1, q2, q3);
}
}
}
if (warp_id < 4) {
asm volatile("bar.sync 1, %0;" :: "r"(BLOCK_M) : "memory");
if (warp_id == 0)
asm volatile("tcgen05.dealloc.cta_group::2.sync.aligned.b32 %0, %1;" :: "r"(taddr), "r"(TOTAL_TMEM_COLS));
}
}
// ============================================================================
// N=128 kernel WITHOUT collector (M=512 path)
// ============================================================================
template <int BLOCK_M, int BLOCK_K, int NUM_STAGES>
__global__ __cluster_dims__(2, 1, 1) __launch_bounds__(BLOCK_M + 2 * WARP_SIZE)
void dual_gemm_cta2_baseline_n128_kernel(
const __grid_constant__ CUtensorMap A_tmap,
const __grid_constant__ CUtensorMap B1_tmap,
const __grid_constant__ CUtensorMap B2_tmap,
const __grid_constant__ CUtensorMap SFA_tmap,
const __grid_constant__ CUtensorMap SFB1_tmap,
const __grid_constant__ CUtensorMap SFB2_tmap,
half *C_ptr,
int M, int N, int K
) {
constexpr int CTA_GROUP = 2;
constexpr int BLOCK_N = 128;
constexpr int HALF_BLOCK_N = BLOCK_N / CTA_GROUP;
constexpr int NUM_WARPS = BLOCK_M / WARP_SIZE + 2;
const int tid = threadIdx.x;
const int bid = blockIdx.x;
const int warp_id = tid / WARP_SIZE;
int cta_rank;
asm volatile("mov.b32 %0, %%cluster_ctarank;" : "=r"(cta_rank));
const int cluster_pid = bid / CTA_GROUP;
const int grid_n_clusters = N / BLOCK_N;
const int cluster_m = cluster_pid / grid_n_clusters;
const int cluster_n = cluster_pid % grid_n_clusters;
const int off_m = cluster_m * (BLOCK_M * CTA_GROUP) + cta_rank * BLOCK_M;
const int off_n = cluster_n * BLOCK_N;
const int sf_y_A = off_m / 128;
const int sf_y_B = off_n / 128;
const int B_col_offset = off_n + cta_rank * HALF_BLOCK_N;
extern __shared__ __align__(1024) char smem_ptr[];
const int smem = static_cast<int>(__cvta_generic_to_shared(smem_ptr));
constexpr int A_size = BLOCK_M * BLOCK_K / 2;
constexpr int B1_size = HALF_BLOCK_N * BLOCK_K / 2;
constexpr int B2_size = HALF_BLOCK_N * BLOCK_K / 2;
constexpr int SFA_size = 128 * BLOCK_K / 16;
constexpr int SFB1_size = 128 * BLOCK_K / 16;
constexpr int SFB2_size = 128 * BLOCK_K / 16;
constexpr int PAD = 128;
constexpr int STAGE_SIZE = A_size + PAD + B1_size + B2_size + PAD + SFA_size + SFB1_size + SFB2_size;
#pragma nv_diag_suppress static_var_with_dynamic_init
__shared__ uint64_t mbars[NUM_STAGES * 2 + 1];
__shared__ int tmem_addr[1];
const int tma_mbar_addr = static_cast<int>(__cvta_generic_to_shared(mbars));
const int mma_mbar_addr = tma_mbar_addr + NUM_STAGES * 8;
const int mainloop_mbar_addr = mma_mbar_addr + NUM_STAGES * 8;
constexpr int ACC_BASE = 0;
constexpr int ACC1_OFF = 0;
constexpr int ACC2_OFF = BLOCK_N;
constexpr int SFA_COLS_PER_K = 8;
constexpr int SFB_COLS_PER_K = 4;
constexpr int SFA_tmem = 2 * BLOCK_N;
constexpr int SFB1_tmem = SFA_tmem + SFA_COLS_PER_K * (BLOCK_K / MMA_K);
constexpr int SFB2_tmem = SFB1_tmem + SFB_COLS_PER_K * (BLOCK_K / MMA_K);
constexpr int TOTAL_TMEM_COLS = 512;
if (warp_id == 0 && elect_sync()) {
for (int i = 0; i < NUM_STAGES; i++) {
mbarrier_init(tma_mbar_addr + i * 8, CTA_GROUP);
mbarrier_init(mma_mbar_addr + i * 8, 1);
}
mbarrier_init(mainloop_mbar_addr, 1);
asm volatile("fence.mbarrier_init.release.cluster;");
} else if (warp_id == 1) {
const int addr = static_cast<int>(__cvta_generic_to_shared(tmem_addr));
asm volatile("tcgen05.alloc.cta_group::2.sync.aligned.shared::cta.b32 [%0], %1;"
:: "r"(addr), "r"(TOTAL_TMEM_COLS));
}
__syncthreads();
const int taddr = tmem_addr[0];
constexpr uint32_t i_desc = (1U << 7U) | (1U << 10U) | ((uint32_t)BLOCK_N >> 3U << 17U) | (2U << 27U);
constexpr int SBO_AB = 8 * 128;
constexpr int SBO_SF = 8 * 16;
constexpr uint64_t AB_desc_base = (desc_encode(SBO_AB) << 32ULL) | (1ULL << 46ULL) | (2ULL << 61ULL);
constexpr uint64_t SF_desc_base = (desc_encode(SBO_SF) << 32ULL) | (1ULL << 46ULL);
const int num_iters = K / BLOCK_K;
constexpr uint64_t cache_A = EVICT_FIRST;
constexpr uint64_t cache_B = EVICT_FIRST;
if (warp_id == NUM_WARPS - 2 && elect_sync()) {
int tma_stage = 0;
int mma_phase = 1;
int it = 0;
for (int iter_k = 0; iter_k < num_iters; iter_k++, it++) {
if (it >= NUM_STAGES)
mbarrier_wait_relaxed(mma_mbar_addr + tma_stage * 8, mma_phase);
const int mbar_addr = (tma_mbar_addr + tma_stage * 8) & 0xFEFFFFFF;
const int base_smem = smem + tma_stage * STAGE_SIZE;
const int A_smem = base_smem;
const int B1_smem = base_smem + A_size + PAD;
const int B2_smem = B1_smem + B1_size;
const int SFA_smem = B2_smem + B2_size + PAD;
const int SFB1_smem = SFA_smem + SFA_size;
const int SFB2_smem = SFB1_smem + SFB1_size;
constexpr int TENSOR_TMA_SIZE = A_size + B1_size + B2_size;
const int SF_TMA_SIZE = SFA_size + ((cta_rank == 0) ? (CTA_GROUP * (SFB1_size + SFB2_size)) : 0);
const int TOTAL_TMA_SIZE = TENSOR_TMA_SIZE + SF_TMA_SIZE;
asm volatile("mbarrier.arrive.expect_tx.release.cta.shared::cluster.b64 _, [%0], %1;"
:: "r"(mbar_addr), "r"(TOTAL_TMA_SIZE) : "memory");
const int z_ab = iter_k * (BLOCK_K / 256);
const int z_sf = iter_k * (BLOCK_K / 64);
tma_3d_gmem2smem<CTA_GROUP>(B1_smem, &B1_tmap, 0, B_col_offset, z_ab, mbar_addr, cache_B);
tma_3d_gmem2smem<CTA_GROUP>(B2_smem, &B2_tmap, 0, B_col_offset, z_ab, mbar_addr, cache_B);
tma_3d_gmem2smem<CTA_GROUP>(A_smem, &A_tmap, 0, off_m, z_ab, mbar_addr, cache_A);
if (cta_rank == 0) {
constexpr uint16_t cta_mask = (1u << CTA_GROUP) - 1u;
tma_3d_gmem2smem_mcast<CTA_GROUP>(SFB1_smem, &SFB1_tmap, 0, sf_y_B, z_sf, mbar_addr, cta_mask, cache_B);
tma_3d_gmem2smem_mcast<CTA_GROUP>(SFB2_smem, &SFB2_tmap, 0, sf_y_B, z_sf, mbar_addr, cta_mask, cache_B);
}
tma_3d_gmem2smem<CTA_GROUP>(SFA_smem, &SFA_tmap, 0, sf_y_A, z_sf, mbar_addr, cache_A);
tma_stage = (tma_stage + 1) % NUM_STAGES;
if (tma_stage == 0) mma_phase ^= 1;
}
} else if (cta_rank == 0 && warp_id == NUM_WARPS - 1 && elect_sync()) {
int tma_stage = 0;
int tma_phase = 0;
constexpr int16_t cta_mask = (1 << CTA_GROUP) - 1;
constexpr int scale_B_base_off = 0;
for (int iter_k = 0; iter_k < num_iters; iter_k++) {
mbarrier_wait(tma_mbar_addr + tma_stage * 8, tma_phase);
const int base_smem = smem + tma_stage * STAGE_SIZE;
const int A_smem = base_smem;
const int B1_smem = base_smem + A_size + PAD;
const int B2_smem = B1_smem + B1_size;
const int SFA_smem = B2_smem + B2_size + PAD;
const int SFB1_smem = SFA_smem + SFA_size;
const int SFB2_smem = SFB1_smem + SFB1_size;
const uint64_t SFA_desc = SF_desc_base + ((uint64_t)SFA_smem >> 4ULL);
const uint64_t SFB1_desc = SF_desc_base + ((uint64_t)SFB1_smem >> 4ULL);
const uint64_t SFB2_desc = SF_desc_base + ((uint64_t)SFB2_smem >> 4ULL);
constexpr int SF_ITERS = BLOCK_K / MMA_K;
constexpr int MMA_ITERS = BLOCK_K / MMA_K;
constexpr int HALF = (SF_ITERS > 1) ? (SF_ITERS / 2) : 1;
uint64_t a_descs[MMA_ITERS];
uint64_t b1_descs[MMA_ITERS];
uint64_t b2_descs[MMA_ITERS];
#pragma unroll
for (int k2 = 0; k2 < MMA_ITERS; k2++) {
const int off = k2 * 32;
a_descs[k2] = AB_desc_base + desc_encode(A_smem + off);
b1_descs[k2] = AB_desc_base + desc_encode(B1_smem + off);
b2_descs[k2] = AB_desc_base + desc_encode(B2_smem + off);
}
const int scale_A_base = SFA_tmem;
const int scale_B1_base = SFB1_tmem + scale_B_base_off;
const int scale_B2_base = SFB2_tmem + scale_B_base_off;
#pragma unroll
for (int k = 0; k < HALF; k++) {
tcgen05_cp_cta2(SFA_tmem + k * SFA_COLS_PER_K, SFA_desc + (uint64_t)k * 32ULL);
tcgen05_cp_cta2(SFB1_tmem + k * SFB_COLS_PER_K, SFB1_desc + (uint64_t)k * 32ULL);
tcgen05_cp_cta2(SFB2_tmem + k * SFB_COLS_PER_K, SFB2_desc + (uint64_t)k * 32ULL);
}
#pragma unroll
for (int k2 = 0; k2 < HALF; k2++) {
const uint64_t a_desc = a_descs[k2];
const uint64_t b1_desc = b1_descs[k2];
const uint64_t b2_desc = b2_descs[k2];
const int k_sf = k2;
const int scale_A = scale_A_base + k_sf * SFA_COLS_PER_K;
const int scale_B1 = scale_B1_base + k_sf * SFB_COLS_PER_K;
const int scale_B2 = scale_B2_base + k_sf * SFB_COLS_PER_K;
const int enable_d = (k2 == 0) ? iter_k : 1;
tcgen05_mma_cta2(ACC_BASE + ACC1_OFF, a_desc, b1_desc, i_desc, scale_A, scale_B1, enable_d);
tcgen05_mma_cta2(ACC_BASE + ACC2_OFF, a_desc, b2_desc, i_desc, scale_A, scale_B2, enable_d);
}
#pragma unroll
for (int k = HALF; k < SF_ITERS; k++) {
tcgen05_cp_cta2(SFA_tmem + k * SFA_COLS_PER_K, SFA_desc + (uint64_t)k * 32ULL);
tcgen05_cp_cta2(SFB1_tmem + k * SFB_COLS_PER_K, SFB1_desc + (uint64_t)k * 32ULL);
tcgen05_cp_cta2(SFB2_tmem + k * SFB_COLS_PER_K, SFB2_desc + (uint64_t)k * 32ULL);
}
#pragma unroll
for (int k2 = HALF; k2 < MMA_ITERS; k2++) {
const uint64_t a_desc = a_descs[k2];
const uint64_t b1_desc = b1_descs[k2];
const uint64_t b2_desc = b2_descs[k2];
const int k_sf = k2;
const int scale_A = scale_A_base + k_sf * SFA_COLS_PER_K;
const int scale_B1 = scale_B1_base + k_sf * SFB_COLS_PER_K;
const int scale_B2 = scale_B2_base + k_sf * SFB_COLS_PER_K;
const int enable_d = 1;
tcgen05_mma_cta2(ACC_BASE + ACC1_OFF, a_desc, b1_desc, i_desc, scale_A, scale_B1, enable_d);
tcgen05_mma_cta2(ACC_BASE + ACC2_OFF, a_desc, b2_desc, i_desc, scale_A, scale_B2, enable_d);
}
asm volatile("tcgen05.commit.cta_group::2.mbarrier::arrive::one.shared::cluster.multicast::cluster.b64 [%0], %1;"
:: "r"(mma_mbar_addr + tma_stage * 8), "h"(cta_mask) : "memory");
tma_stage = (tma_stage + 1) % NUM_STAGES;
if (tma_stage == 0) tma_phase ^= 1;
}
asm volatile("tcgen05.commit.cta_group::2.mbarrier::arrive::one.shared::cluster.multicast::cluster.b64 [%0], %1;"
:: "r"(mainloop_mbar_addr), "h"(cta_mask) : "memory");
} else if (warp_id < 4) {
mbarrier_wait(mainloop_mbar_addr, 0);
asm volatile("tcgen05.fence::after_thread_sync;");
if (tid < BLOCK_M) {
constexpr int CHUNK = 16;
const int tmem_row = cta_rank * 128 + warp_id * 32;
half* row_ptr = C_ptr + (off_m + tid) * N + off_n;
#pragma unroll 1
for (int seg = 0; seg < 128; seg += 64) {
const uint32_t row_base = (uint32_t)taddr + ((uint32_t)tmem_row << 16) + (uint32_t)(ACC_BASE + ACC1_OFF + seg);
// Epilogue pipelined (4x16 chunks per seg)
float acc1a[16], acc2a[16];
float acc1b[16], acc2b[16];
const uint32_t addr2_base = row_base + (uint32_t)ACC2_OFF;
// base 0 -> A
tcgen05_ld_32x32bx8(acc1a + 0, (int)(row_base + 0));
tcgen05_ld_32x32bx8(acc1a + 8, (int)(row_base + 8));
tcgen05_ld_32x32bx8(acc2a + 0, (int)(addr2_base + 0));
tcgen05_ld_32x32bx8(acc2a + 8, (int)(addr2_base + 8));
// base 0
asm volatile("tcgen05.wait::ld.sync.aligned;");
// prefetch base 16 -> B
tcgen05_ld_32x32bx8(acc1b + 0, (int)(row_base + 16));
tcgen05_ld_32x32bx8(acc1b + 8, (int)(row_base + 24));
tcgen05_ld_32x32bx8(acc2b + 0, (int)(addr2_base + 16));
tcgen05_ld_32x32bx8(acc2b + 8, (int)(addr2_base + 24));
{
half2 h0 = silu_mul_h2(acc1a[0], acc1a[1], acc2a[0], acc2a[1]);
half2 h1 = silu_mul_h2(acc1a[2], acc1a[3], acc2a[2], acc2a[3]);
half2 h2 = silu_mul_h2(acc1a[4], acc1a[5], acc2a[4], acc2a[5]);
half2 h3 = silu_mul_h2(acc1a[6], acc1a[7], acc2a[6], acc2a[7]);
half2 h4 = silu_mul_h2(acc1a[8], acc1a[9], acc2a[8], acc2a[9]);
half2 h5 = silu_mul_h2(acc1a[10], acc1a[11], acc2a[10], acc2a[11]);
half2 h6 = silu_mul_h2(acc1a[12], acc1a[13], acc2a[12], acc2a[13]);
half2 h7 = silu_mul_h2(acc1a[14], acc1a[15], acc2a[14], acc2a[15]);
const uint32_t u0 = bitcast_u32(h0);
const uint32_t u1 = bitcast_u32(h1);
const uint32_t u2 = bitcast_u32(h2);
const uint32_t u3 = bitcast_u32(h3);
const uint32_t u4 = bitcast_u32(h4);
const uint32_t u5 = bitcast_u32(h5);
const uint32_t u6 = bitcast_u32(h6);
const uint32_t u7 = bitcast_u32(h7);
const unsigned long long q0 = (unsigned long long)u0 | ((unsigned long long)u1 << 32);
const unsigned long long q1 = (unsigned long long)u2 | ((unsigned long long)u3 << 32);
const unsigned long long q2 = (unsigned long long)u4 | ((unsigned long long)u5 << 32);
const unsigned long long q3 = (unsigned long long)u6 | ((unsigned long long)u7 << 32);
stg_32b((const void*)(row_ptr + seg + 0), q0, q1, q2, q3);
}
// base 16
asm volatile("tcgen05.wait::ld.sync.aligned;");
// prefetch base 32 -> A
tcgen05_ld_32x32bx8(acc1a + 0, (int)(row_base + 32));
tcgen05_ld_32x32bx8(acc1a + 8, (int)(row_base + 40));
tcgen05_ld_32x32bx8(acc2a + 0, (int)(addr2_base + 32));
tcgen05_ld_32x32bx8(acc2a + 8, (int)(addr2_base + 40));
{
half2 h0 = silu_mul_h2(acc1b[0], acc1b[1], acc2b[0], acc2b[1]);
half2 h1 = silu_mul_h2(acc1b[2], acc1b[3], acc2b[2], acc2b[3]);
half2 h2 = silu_mul_h2(acc1b[4], acc1b[5], acc2b[4], acc2b[5]);
half2 h3 = silu_mul_h2(acc1b[6], acc1b[7], acc2b[6], acc2b[7]);
half2 h4 = silu_mul_h2(acc1b[8], acc1b[9], acc2b[8], acc2b[9]);
half2 h5 = silu_mul_h2(acc1b[10], acc1b[11], acc2b[10], acc2b[11]);
half2 h6 = silu_mul_h2(acc1b[12], acc1b[13], acc2b[12], acc2b[13]);
half2 h7 = silu_mul_h2(acc1b[14], acc1b[15], acc2b[14], acc2b[15]);
const uint32_t u0 = bitcast_u32(h0);
const uint32_t u1 = bitcast_u32(h1);
const uint32_t u2 = bitcast_u32(h2);
const uint32_t u3 = bitcast_u32(h3);
const uint32_t u4 = bitcast_u32(h4);
const uint32_t u5 = bitcast_u32(h5);
const uint32_t u6 = bitcast_u32(h6);
const uint32_t u7 = bitcast_u32(h7);
const unsigned long long q0 = (unsigned long long)u0 | ((unsigned long long)u1 << 32);
const unsigned long long q1 = (unsigned long long)u2 | ((unsigned long long)u3 << 32);
const unsigned long long q2 = (unsigned long long)u4 | ((unsigned long long)u5 << 32);
const unsigned long long q3 = (unsigned long long)u6 | ((unsigned long long)u7 << 32);
stg_32b((const void*)(row_ptr + seg + 16), q0, q1, q2, q3);
}
// base 32
asm volatile("tcgen05.wait::ld.sync.aligned;");
// prefetch base 48 -> B
tcgen05_ld_32x32bx8(acc1b + 0, (int)(row_base + 48));
tcgen05_ld_32x32bx8(acc1b + 8, (int)(row_base + 56));
tcgen05_ld_32x32bx8(acc2b + 0, (int)(addr2_base + 48));
tcgen05_ld_32x32bx8(acc2b + 8, (int)(addr2_base + 56));
{
half2 h0 = silu_mul_h2(acc1a[0], acc1a[1], acc2a[0], acc2a[1]);
half2 h1 = silu_mul_h2(acc1a[2], acc1a[3], acc2a[2], acc2a[3]);
half2 h2 = silu_mul_h2(acc1a[4], acc1a[5], acc2a[4], acc2a[5]);
half2 h3 = silu_mul_h2(acc1a[6], acc1a[7], acc2a[6], acc2a[7]);
half2 h4 = silu_mul_h2(acc1a[8], acc1a[9], acc2a[8], acc2a[9]);
half2 h5 = silu_mul_h2(acc1a[10], acc1a[11], acc2a[10], acc2a[11]);
half2 h6 = silu_mul_h2(acc1a[12], acc1a[13], acc2a[12], acc2a[13]);
half2 h7 = silu_mul_h2(acc1a[14], acc1a[15], acc2a[14], acc2a[15]);
const uint32_t u0 = bitcast_u32(h0);
const uint32_t u1 = bitcast_u32(h1);
const uint32_t u2 = bitcast_u32(h2);
const uint32_t u3 = bitcast_u32(h3);
const uint32_t u4 = bitcast_u32(h4);
const uint32_t u5 = bitcast_u32(h5);
const uint32_t u6 = bitcast_u32(h6);
const uint32_t u7 = bitcast_u32(h7);
const unsigned long long q0 = (unsigned long long)u0 | ((unsigned long long)u1 << 32);
const unsigned long long q1 = (unsigned long long)u2 | ((unsigned long long)u3 << 32);
const unsigned long long q2 = (unsigned long long)u4 | ((unsigned long long)u5 << 32);
const unsigned long long q3 = (unsigned long long)u6 | ((unsigned long long)u7 << 32);
stg_32b((const void*)(row_ptr + seg + 32), q0, q1, q2, q3);
}
// base 48
asm volatile("tcgen05.wait::ld.sync.aligned;");
{
half2 h0 = silu_mul_h2(acc1b[0], acc1b[1], acc2b[0], acc2b[1]);
half2 h1 = silu_mul_h2(acc1b[2], acc1b[3], acc2b[2], acc2b[3]);
half2 h2 = silu_mul_h2(acc1b[4], acc1b[5], acc2b[4], acc2b[5]);
half2 h3 = silu_mul_h2(acc1b[6], acc1b[7], acc2b[6], acc2b[7]);
half2 h4 = silu_mul_h2(acc1b[8], acc1b[9], acc2b[8], acc2b[9]);
half2 h5 = silu_mul_h2(acc1b[10], acc1b[11], acc2b[10], acc2b[11]);
half2 h6 = silu_mul_h2(acc1b[12], acc1b[13], acc2b[12], acc2b[13]);
half2 h7 = silu_mul_h2(acc1b[14], acc1b[15], acc2b[14], acc2b[15]);
const uint32_t u0 = bitcast_u32(h0);
const uint32_t u1 = bitcast_u32(h1);
const uint32_t u2 = bitcast_u32(h2);
const uint32_t u3 = bitcast_u32(h3);
const uint32_t u4 = bitcast_u32(h4);
const uint32_t u5 = bitcast_u32(h5);
const uint32_t u6 = bitcast_u32(h6);
const uint32_t u7 = bitcast_u32(h7);
const unsigned long long q0 = (unsigned long long)u0 | ((unsigned long long)u1 << 32);
const unsigned long long q1 = (unsigned long long)u2 | ((unsigned long long)u3 << 32);
const unsigned long long q2 = (unsigned long long)u4 | ((unsigned long long)u5 << 32);
const unsigned long long q3 = (unsigned long long)u6 | ((unsigned long long)u7 << 32);
stg_32b((const void*)(row_ptr + seg + 48), q0, q1, q2, q3);
}
}
}
}
if (warp_id < 4) {
asm volatile("bar.sync 1, %0;" :: "r"(BLOCK_M) : "memory");
if (warp_id == 0)
asm volatile("tcgen05.dealloc.cta_group::2.sync.aligned.b32 %0, %1;" :: "r"(taddr), "r"(TOTAL_TMEM_COLS));
}
}
// ============================================================================
// Launch wrappers
// ============================================================================
template <int BLOCK_N, int BLOCK_M, int BLOCK_K, int NUM_STAGES>
at::Tensor dual_gemm_launch_collector(
const at::Tensor& A,
const at::Tensor& B1,
const at::Tensor& B2,
const at::Tensor& SFA,
const at::Tensor& SFB1,
const at::Tensor& SFB2,
at::Tensor& C
) {
const int M = (int)A.size(0);
const int N = (int)B1.size(0);
const int K = (int)A.size(1) * 2;
auto A_ptr = reinterpret_cast<const char *>(A.data_ptr());
auto B1_ptr = reinterpret_cast<const char *>(B1.data_ptr());
auto B2_ptr = reinterpret_cast<const char *>(B2.data_ptr());
auto SFA_ptr = reinterpret_cast<const char *>(SFA.data_ptr());
auto SFB1_ptr = reinterpret_cast<const char *>(SFB1.data_ptr());
auto SFB2_ptr = reinterpret_cast<const char *>(SFB2.data_ptr());
auto C_ptr = reinterpret_cast<half *>(C.data_ptr());
const CUtensorMap& A_tmap = get_ab_tmap_cached(A_ptr, (uint32_t)M, (uint32_t)K, (uint32_t)BLOCK_M, (uint32_t)BLOCK_K);
const CUtensorMap& B1_tmap = get_ab_tmap_cached(B1_ptr, (uint32_t)N, (uint32_t)K, (uint32_t)(BLOCK_N/2), (uint32_t)BLOCK_K);
const CUtensorMap& B2_tmap = get_ab_tmap_cached(B2_ptr, (uint32_t)N, (uint32_t)K, (uint32_t)(BLOCK_N/2), (uint32_t)BLOCK_K);
const CUtensorMap& SFA_tmap = get_sf_tmap_cached(SFA_ptr, (uint32_t)M, (uint32_t)K, (uint32_t)BLOCK_K);
const CUtensorMap& SFB1_tmap = get_sf_tmap_cached(SFB1_ptr, (uint32_t)N, (uint32_t)K, (uint32_t)BLOCK_K);
const CUtensorMap& SFB2_tmap = get_sf_tmap_cached(SFB2_ptr, (uint32_t)N, (uint32_t)K, (uint32_t)BLOCK_K);
constexpr int tb_size = BLOCK_M + 2 * WARP_SIZE;
constexpr int A_size_c = BLOCK_M * BLOCK_K / 2;
constexpr int B_size_c = (BLOCK_N / 2) * BLOCK_K / 2;
constexpr int SFA_size_c = 128 * BLOCK_K / 16;
constexpr int SFB_size_c = 128 * BLOCK_K / 16;
const int smem_size = (A_size_c + B_size_c + B_size_c + SFA_size_c + SFB_size_c + SFB_size_c) * NUM_STAGES;
const int grid_m_clusters = M / (BLOCK_M * 2);
const int grid_n_clusters = N / BLOCK_N;
const int num_tiles = grid_m_clusters * grid_n_clusters;
int clusters = num_tiles;
if (clusters < 1) clusters = 1;
dim3 grid(clusters * 2, 1, 1);
auto kernel_fn = dual_gemm_cta2_collector_n64_kernel<BLOCK_M, BLOCK_K, NUM_STAGES>;
static int max_smem = 0;
if (smem_size > max_smem && smem_size > 48000) {
cudaFuncSetAttribute(kernel_fn, cudaFuncAttributeMaxDynamicSharedMemorySize, smem_size);
max_smem = smem_size;
}
kernel_fn<<<grid, tb_size, smem_size>>>(A_tmap, B1_tmap, B2_tmap, SFA_tmap, SFB1_tmap, SFB2_tmap, C_ptr, M, N, K);
return C;
}
template <int BLOCK_N, int BLOCK_M, int BLOCK_K, int NUM_STAGES>
at::Tensor dual_gemm_launch_baseline(
const at::Tensor& A,
const at::Tensor& B1,
const at::Tensor& B2,
const at::Tensor& SFA,
const at::Tensor& SFB1,
const at::Tensor& SFB2,
at::Tensor& C
) {
const int M = (int)A.size(0);
const int N = (int)B1.size(0);
const int K = (int)A.size(1) * 2;
auto A_ptr = reinterpret_cast<const char *>(A.data_ptr());
auto B1_ptr = reinterpret_cast<const char *>(B1.data_ptr());
auto B2_ptr = reinterpret_cast<const char *>(B2.data_ptr());
auto SFA_ptr = reinterpret_cast<const char *>(SFA.data_ptr());
auto SFB1_ptr = reinterpret_cast<const char *>(SFB1.data_ptr());
auto SFB2_ptr = reinterpret_cast<const char *>(SFB2.data_ptr());
auto C_ptr = reinterpret_cast<half *>(C.data_ptr());
const CUtensorMap& A_tmap = get_ab_tmap_cached(A_ptr, (uint32_t)M, (uint32_t)K, (uint32_t)BLOCK_M, (uint32_t)BLOCK_K);
const CUtensorMap& B1_tmap = get_ab_tmap_cached(B1_ptr, (uint32_t)N, (uint32_t)K, (uint32_t)(BLOCK_N/2), (uint32_t)BLOCK_K);
const CUtensorMap& B2_tmap = get_ab_tmap_cached(B2_ptr, (uint32_t)N, (uint32_t)K, (uint32_t)(BLOCK_N/2), (uint32_t)BLOCK_K);
const CUtensorMap& SFA_tmap = get_sf_tmap_cached(SFA_ptr, (uint32_t)M, (uint32_t)K, (uint32_t)BLOCK_K);
const CUtensorMap& SFB1_tmap = get_sf_tmap_cached(SFB1_ptr, (uint32_t)N, (uint32_t)K, (uint32_t)BLOCK_K);
const CUtensorMap& SFB2_tmap = get_sf_tmap_cached(SFB2_ptr, (uint32_t)N, (uint32_t)K, (uint32_t)BLOCK_K);
constexpr int tb_size = BLOCK_M + 2 * WARP_SIZE;
constexpr int A_size_c = BLOCK_M * BLOCK_K / 2;
constexpr int B_size_c = (BLOCK_N / 2) * BLOCK_K / 2;
constexpr int SFA_size_c = 128 * BLOCK_K / 16;
constexpr int SFB_size_c = 128 * BLOCK_K / 16;
constexpr int PAD_c = 256;
const int smem_size = (A_size_c + B_size_c + B_size_c + SFA_size_c + SFB_size_c + SFB_size_c + PAD_c) * NUM_STAGES;
const int grid_m_clusters = M / (BLOCK_M * 2);
const int grid_n_clusters = N / BLOCK_N;
const int num_tiles = grid_m_clusters * grid_n_clusters;
int clusters = num_tiles;
if (clusters < 1) clusters = 1;
dim3 grid(clusters * 2, 1, 1);
auto kernel_fn = dual_gemm_cta2_baseline_n128_kernel<BLOCK_M, BLOCK_K, NUM_STAGES>;
static int max_smem = 0;
if (smem_size > max_smem && smem_size > 48000) {
cudaFuncSetAttribute(kernel_fn, cudaFuncAttributeMaxDynamicSharedMemorySize, smem_size);
max_smem = smem_size;
}
kernel_fn<<<grid, tb_size, smem_size>>>(A_tmap, B1_tmap, B2_tmap, SFA_tmap, SFB1_tmap, SFB2_tmap, C_ptr, M, N, K);
return C;
}
at::Tensor dual_gemm(
const at::Tensor& A,
const at::Tensor& B1,
const at::Tensor& B2,
const at::Tensor& SFA,
const at::Tensor& SFB1,
const at::Tensor& SFB2,
at::Tensor& C
) {
const int K = (int)A.size(1) * 2;
const int M = (int)A.size(0);
const int N = (int)B1.size(0);
TORCH_CHECK((K % 256) == 0, "Unsupported K: ", K);
TORCH_CHECK((M % 256) == 0, "Unsupported M: ", M);
TORCH_CHECK((N % 64) == 0, "Unsupported N: ", N);
if (M == 256) {
if ((N == 3072 && K == 4096) || (N == 4096 && K == 7168)) {
return dual_gemm_launch_collector<64, 128, 256, 7>(A, B1, B2, SFA, SFB1, SFB2, C);
}
const int num_iters = K / 256;
const int stages = (num_iters < 7) ? num_iters : 7;
switch (stages) {
case 1: return dual_gemm_launch_collector<64, 128, 256, 1>(A, B1, B2, SFA, SFB1, SFB2, C);
case 2: return dual_gemm_launch_collector<64, 128, 256, 2>(A, B1, B2, SFA, SFB1, SFB2, C);
case 3: return dual_gemm_launch_collector<64, 128, 256, 3>(A, B1, B2, SFA, SFB1, SFB2, C);
case 4: return dual_gemm_launch_collector<64, 128, 256, 4>(A, B1, B2, SFA, SFB1, SFB2, C);
case 5: return dual_gemm_launch_collector<64, 128, 256, 5>(A, B1, B2, SFA, SFB1, SFB2, C);
case 6: return dual_gemm_launch_collector<64, 128, 256, 6>(A, B1, B2, SFA, SFB1, SFB2, C);
default: return dual_gemm_launch_collector<64, 128, 256, 7>(A, B1, B2, SFA, SFB1, SFB2, C);
}
} else {
TORCH_CHECK((N % 128) == 0, "Unsupported N for N=128 path: ", N);
if (M == 512 && K == 7168 && (N == 3072 || N == 4096)) {
return dual_gemm_launch_baseline<128, 128, 256, 5>(A, B1, B2, SFA, SFB1, SFB2, C);
}
const int num_iters = K / 256;
const int stages = (num_iters < 5) ? num_iters : 5;
switch (stages) {
case 1: return dual_gemm_launch_baseline<128, 128, 256, 1>(A, B1, B2, SFA, SFB1, SFB2, C);
case 2: return dual_gemm_launch_baseline<128, 128, 256, 2>(A, B1, B2, SFA, SFB1, SFB2, C);
case 3: return dual_gemm_launch_baseline<128, 128, 256, 3>(A, B1, B2, SFA, SFB1, SFB2, C);
case 4: return dual_gemm_launch_baseline<128, 128, 256, 4>(A, B1, B2, SFA, SFB1, SFB2, C);
default: return dual_gemm_launch_baseline<128, 128, 256, 5>(A, B1, B2, SFA, SFB1, SFB2, C);
}
}
}
TORCH_LIBRARY(dual_gemm_13901_epi_pipe_module, m) {
m.def("dual_gemm(Tensor A, Tensor B1, Tensor B2, Tensor SFA, Tensor SFB1, Tensor SFB2, Tensor(a!) C) -> Tensor");
m.impl("dual_gemm", &dual_gemm);
}
"""
_compiled_module = None
def _get_module():
global _compiled_module
if _compiled_module is None:
_compiled_module = load_inline(
name="dual_gemm_13901_epi_pipe_cuda",
cpp_sources="",
cuda_sources=CUDA_SOURCE,
functions=None,
extra_cuda_cflags=[
"-O3",
"-gencode=arch=compute_100a,code=sm_100a",
"--use_fast_math",
"--expt-relaxed-constexpr",
"--relocatable-device-code=false",
"--extra-device-vectorization",
],
extra_ldflags=["-lcuda"],
with_cuda=True,
verbose=False,
is_python_module=False,
)
return _compiled_module
def custom_kernel(data: input_t) -> output_t:
a, b1, b2, _, _, _, sfa_permuted, sfb1_permuted, sfb2_permuted, c = data
_get_module()
return torch.ops.dual_gemm_13901_epi_pipe_module.dual_gemm(
a, b1, b2, sfa_permuted, sfb1_permuted, sfb2_permuted, c
)
scrolls · 1337 lines total
Source code from GPU Mode and the KernelBot dataset · June 9 Researcher Reciprocity License v1.0
Changes from previous submission
Against this author's previous submission submission 383213.
⋯ 497 unchanged linesconst int z_ab = iter_k * (BLOCK_K / 256);const int z_sf = iter_k * (BLOCK_K / 64);+ // (kept as-is from current submission_13901.py)tma_3d_gmem2smem<CTA_GROUP>(B2_smem, &B2_tmap, 0, B_col_offset, z_ab, mbar_addr, cache_B);tma_3d_gmem2smem<CTA_GROUP>(B1_smem, &B1_tmap, 0, B_col_offset, z_ab, mbar_addr, cache_B);tma_3d_gmem2smem<CTA_GROUP>(A_smem, &A_tmap, 0, off_m, z_ab, mbar_addr, cache_A);
Best evidence level for this revision: reported
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