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https://github.com/ikawrakow/ik_llama.cpp.git
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K-cache Hadamard transforms (CUDA) (#1034)
* Hadamard transforms for K-cache on CUDA * Minor --------- Co-authored-by: Iwan Kawrakow <iwan.kawrakow@gmail.com>
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@@ -47,6 +47,7 @@
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#include "ggml-cuda/set-rows.cuh"
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#include "ggml-cuda/argmax.cuh"
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#include "ggml-cuda/multiadd.cuh"
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#include "ggml-cuda/hadamard.cuh"
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#include <algorithm>
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#include <array>
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@@ -2958,6 +2959,9 @@ static bool ggml_cuda_compute_forward(ggml_backend_cuda_context & ctx, struct gg
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case GGML_OP_ARGMAX:
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ggml_cuda_argmax(ctx, dst);
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break;
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case GGML_OP_HADAMARD:
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ggml_cuda_op_hadamard(ctx, dst);
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break;
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case GGML_OP_REPEAT:
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ggml_cuda_op_repeat(ctx, dst);
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break;
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@@ -4060,6 +4064,8 @@ GGML_CALL static bool ggml_backend_cuda_supports_op(ggml_backend_t backend, cons
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} break;
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case GGML_OP_ARGMAX:
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return true;
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case GGML_OP_HADAMARD:
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return (op->ne[0] == 64 || op->ne[0] == 128 || op->ne[0] == 256) && op->type == GGML_TYPE_F32 && op->src[0]->type == GGML_TYPE_F32;
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case GGML_OP_DUP:
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case GGML_OP_REPEAT:
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case GGML_OP_CONCAT:
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82
ggml/src/ggml-cuda/hadamard.cu
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82
ggml/src/ggml-cuda/hadamard.cu
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@@ -0,0 +1,82 @@
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#include "hadamard.cuh"
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template <int nh>
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static __global__ void hadamard_f32(const char * src, char * dst, int ne0,
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size_t nb01, size_t nb02, size_t nb03, size_t nb1, size_t nb2, size_t nb3) {
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constexpr float ksqrt2 = 0.707106781f;
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int nc = ne0/nh;
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int ii1 = blockIdx.x;
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int i1 = ii1 / nc;
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int ic = ii1 % nc;
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int i2 = blockIdx.y;
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int i3 = blockIdx.z;
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int tid = threadIdx.x;
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const float * x = (const float *)((const char *)src + i1*nb01 + i2*nb02 + i3*nb03) + ic*nh;
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float * y = ( float *)((const char *)dst + i1*nb1 + i2*nb2 + i3*nb3) + ic*nh;
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__shared__ float ys[nh];
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ys[2*tid+0] = x[2*tid+0] + x[2*tid+1];
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ys[2*tid+1] = x[2*tid+0] - x[2*tid+1];
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float scale = ksqrt2;
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#pragma unroll
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for (int h = 2; h < nh; h <<= 2) {
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__syncthreads();
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int ii = tid/h, jj = tid%h;
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int j = 2*h*ii+jj;
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float u = ys[j], v = ys[j+h];
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ys[j+0] = u + v;
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ys[j+h] = u - v;
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scale *= ksqrt2;
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}
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__syncthreads();
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y[2*tid+0] = ys[2*tid+0] * scale;
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y[2*tid+1] = ys[2*tid+1] * scale;
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}
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static void hadamard_f32_cuda(int nh, const char * x, char * y, int ne0, int ne1, int ne2, int ne3,
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size_t nb01, size_t nb02, size_t nb03, size_t nb1, size_t nb2, size_t nb3, cudaStream_t stream) {
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int nc = ne0/nh;
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int nrows = nc*ne1;
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dim3 num_blocks = dim3(nrows, ne2, ne3);
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switch (nh) {
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case 64: hadamard_f32< 64><<<num_blocks, 32, 0, stream>>>(x, y, ne0, nb01, nb02, nb03, nb1, nb2, nb3); break;
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case 128: hadamard_f32<128><<<num_blocks, 64, 0, stream>>>(x, y, ne0, nb01, nb02, nb03, nb1, nb2, nb3); break;
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case 256: hadamard_f32<256><<<num_blocks, 128, 0, stream>>>(x, y, ne0, nb01, nb02, nb03, nb1, nb2, nb3); break;
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default: GGML_ABORT("Unsupported Hadamard block size");
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}
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}
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#if defined(_MSC_VER)
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#pragma warning(disable: 4244 4267) // possible loss of data
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#include <intrin.h>
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#include <ammintrin.h>
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#include <nmmintrin.h>
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#include <immintrin.h>
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#include <stdlib.h>
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static inline int popcount(uint32_t x) { return __popcnt(x); }
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#else
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static inline int popcount(uint32_t x) { return __builtin_popcount(x); }
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#endif
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void ggml_cuda_op_hadamard(ggml_backend_cuda_context & ctx, ggml_tensor * dst) {
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const ggml_tensor * src = dst->src[0];
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GGML_ASSERT(src->type == GGML_TYPE_F32);
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GGML_ASSERT(dst->type == GGML_TYPE_F32);
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GGML_ASSERT(ggml_are_same_shape(src, dst));
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int nh = dst->op_params[0];
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GGML_ASSERT(dst->ne[0]%nh == 0);
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GGML_ASSERT(nh > 1 && popcount(nh) == 1);
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hadamard_f32_cuda(nh, (const char *)src->data, (char *)dst->data, src->ne[0], src->ne[1], src->ne[2], src->ne[3],
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src->nb[1], src->nb[2], src->nb[3], dst->nb[1], dst->nb[2], dst->nb[3], ctx.stream());
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}
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3
ggml/src/ggml-cuda/hadamard.cuh
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3
ggml/src/ggml-cuda/hadamard.cuh
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@@ -0,0 +1,3 @@
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#include "common.cuh"
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void ggml_cuda_op_hadamard(ggml_backend_cuda_context & ctx, ggml_tensor * dst);
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