sgemm_wg: revert to faster params
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@@ -16,11 +16,11 @@
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// (BM*BN) / (TM*TN) == threadblock size >= NT * CORES_PER_CLUSTER
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// * Combining BM * BK >= (BM*BN) / (TM*TN) == threadblock yields
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// BM <= BK*TM*TN
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#define BM 16
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#define BM 8
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#define BN BM
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#define BK 4
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#define TM 4
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#define TN 4
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#define BK 2
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#define TM 2
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#define TN 2
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void threadblock_barrier(unsigned int tid_in_threadblock, unsigned int barrier_id, unsigned int count) {
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vx_fence();
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@@ -80,6 +80,7 @@ void thread_block_gemm(kernel_arg_t *__UNIFORM__ arg,
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//
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// Make sure global offset values for A and B are contiguous between
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// neighboring threads to ensure GMEM coalescing.
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// #pragma GCC unroll 1
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for (uint32_t load_offset = 0; load_offset < BM; load_offset += stride_a) {
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const uint32_t global_a_offset =
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dim_k * (global_a_row + load_offset) + (k + local_a_col);
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@@ -98,7 +99,7 @@ void thread_block_gemm(kernel_arg_t *__UNIFORM__ arg,
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threadblock_dim_y);
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// Compute single tile*tile matmul
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#pragma GCC unroll 2
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// #pragma GCC unroll 2
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for (uint32_t local_k = 0; local_k < BK; local_k++) {
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// First, pump data from SMEM->RF
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#pragma GCC unroll TM
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@@ -136,7 +137,6 @@ void thread_block_gemm(kernel_arg_t *__UNIFORM__ arg,
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for (uint32_t res_idx_m = 0; res_idx_m < TM; res_idx_m++) {
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#pragma GCC unroll TN
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for (uint32_t res_idx_n = 0; res_idx_n < TN; res_idx_n++) {
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// NOTE use of local_b_row and global_b_col here
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C[dim_n * (BM * threadblock_id_y + TM * local_c_row + res_idx_m) +
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(BN * threadblock_id_x + TN * local_c_col + res_idx_n)] =
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reg_c[TN * res_idx_m + res_idx_n];
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