/** * Full UMMA FMHA — HD=16, SK=128, with PV GEMM via tcgen05.mma TS * * Pipeline: Q×K^T (SS) → softmax → P×V (TS) → epilogue * TMEM: columns 0-127 = P, columns 128-159 = O * * PV GEMM: 8 K-tiles, each A=(128,16) from TMEM, B=(16,16) from SMEM * Accumulate O in TMEM at columns 128-143 */ #include #include #include #include #include #include "dsv4/kernels/attention/fmha_common.cuh" #include "dsv4/kernels/attention/fmha_umma_desc.cuh" using namespace dsv4::kernels::attention; static bf16_t f32_to_bf16_host(float f) { uint32_t u; memcpy(&u,&f,4); return (uint16_t)(u>>16); } static float bf16_to_f32_host(bf16_t h) { uint32_t u=(uint32_t)h<<16; float f; memcpy(&f,&u,4); return f; } constexpr int HD = 16, SK = 128, BLOCK_MN = 128; constexpr int VKT = SK / MMA_K_BF16; // 8 PV K-tiles constexpr int V_TILE_SZ = MMA_K_BF16 * HD; // 256 BF16 per V K-tile constexpr int TMEM_P = 128; // P: 128 columns constexpr int TMEM_O = 32; // O: 16 cols, round to 32 (min, power of 2) constexpr int TMEM_N = 256; // total: 128 + 32 = 160 → round to 256 __global__ void __launch_bounds__(128) test_fmha_ts(const bf16_t* q, const bf16_t* k, const bf16_t* v, bf16_t* o_out, float* o_scalar, float scale) { const int tid = threadIdx.x, wid = tid / 32, lane = tid % 32; // SMEM: tmem_base + sQ(128,16)+pad + sK(128,16) + V tiles (8 × 16×16) extern __shared__ char sbuf[]; uint32_t* sTmemBase = (uint32_t*)sbuf; bf16_t* sQ = (bf16_t*)(((uintptr_t)(sbuf + 4) + 15) & ~(uintptr_t)15); bf16_t* sK = sQ + 128 * 16 + 4096; // Fresh aligned V buffer (ensure 128-byte alignment for descriptor) bf16_t* sV = (bf16_t*)(((uintptr_t)(sK + 128 * 16) + 127) & ~(uintptr_t)127); float* sQ_row = (float*)(sV + 16 * 16); for (int d = tid; d < HD; d += 128) sQ_row[d] = bf16_to_f32(q[d]); // TMEM alloc — 256 columns if (wid == 1) tmem_alloc(__cvta_generic_to_shared(sTmemBase), TMEM_N); __syncthreads(); uint32_t tb = *sTmemBase; uint32_t tb_o = tb + TMEM_P; // O at column 128 // Load Q, K write_q_to_smem(sQ, q); write_k_to_smem(sK, k); bf16_t* sQ_pad = sQ + 128 * 16; for (int i = tid; i < 4096; i += 128) sQ_pad[i] = 0; // Load V = all 1.0 into (16, 16) canonical (same as isolated test) for (int i = tid; i < 16 * 16; i += 128) sV[i] = 0; __syncthreads(); for (int i = tid; i < 16 * 16; i += 128) { int r = i / 16, c = i % 16; int ck = c / 8, lc = c % 8; int tmn = r / 8, lr = r % 8; sV[ck * 2 * 64 + tmn * 64 + lr * 8 + lc] = f32_to_bf16(1.0f); } __syncthreads(); // DEBUG: Skip QK and softmax, write P directly to TMEM // Write P = all 1.0 (128, 128) — only row 0 has 1.0, rest 0 if (wid == 0) { for (int n = 0; n < SK / 8; n++) { // Lane 0 writes 1.0 for row 0, other lanes write 0 float p0=(lane==0)?0.0078125f:0, p1=(lane==0)?0.0078125f:0; float p2=(lane==0)?0.0078125f:0, p3=(lane==0)?0.0078125f:0; float p4=(lane==0)?0.0078125f:0, p5=(lane==0)?0.0078125f:0; float p6=(lane==0)?0.0078125f:0, p7=(lane==0)?0.0078125f:0; asm volatile("tcgen05.st.sync.aligned.32x32b.x8.b32 [%0],{%1,%2,%3,%4,%5,%6,%7,%8};" :: "r"(tb+n*8),"f"(p0),"f"(p1),"f"(p2),"f"(p3),"f"(p4),"f"(p5),"f"(p6),"f"(p7)); } tmem_fence_store(); } __syncthreads(); /* // STEP 1: QK GEMM — DISABLED for debug uint64_t desc_q = make_umma_desc_kmajor_none(__cvta_generic_to_shared(sQ), BLOCK_MN); uint64_t desc_k = make_umma_desc_kmajor_none(__cvta_generic_to_shared(sK), BLOCK_MN); uint32_t idesc_qk = make_idesc(BLOCK_MN, BLOCK_MN); if (lane == 0) umma_ss_f16(tb, desc_q, desc_k, idesc_qk, false); asm volatile("tcgen05.fence::after_thread_sync;" ::: "memory"); __syncthreads(); // STEP 2: Softmax — DISABLED for debug if (wid == 0) { float s_vals[SK], row_max = -INFINITY; for (int n = 0; n < SK / 8; n++) { float tmp[8]; 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"(tb + n*8)); asm volatile("tcgen05.wait::ld.sync.aligned;"); if (lane == 0) for (int c=0;c<8;c++) { s_vals[n*8+c] = tmp[c]*scale; row_max = fmaxf(row_max, tmp[c]*scale); } } row_max = wmax(row_max); float row_sum = 0.0f; if (lane == 0) for (int j=0;j>>(d_q, d_k, d_v, d_o, d_o_scalar, SCALE); cudaError_t err = cudaDeviceSynchronize(); if (err != cudaSuccess) { printf("CUDA ERROR: %s\n", cudaGetErrorString(err)); return 1; } cudaMemcpy(h_o, d_o, HD*sizeof(bf16_t), cudaMemcpyDeviceToHost); cudaMemcpy(h_o_scalar, d_o_scalar, HD*sizeof(float), cudaMemcpyDeviceToHost); printf("O[0..15] MMA: "); for(int d=0;d0 ? max_diff/max_val : max_diff; float cos_sim=0,na=0,nb=0; for (int d=0;d 0.999f ? "PASSED" : "FAILED"); cudaFree(d_q); cudaFree(d_k); cudaFree(d_v); cudaFree(d_o); cudaFree(d_o_scalar); free(h_q); free(h_k); free(h_v); free(h_o); free(h_o_scalar); return cos_sim > 0.999f ? 0 : 1; }