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// Adapted from from FasterTransformer v5.2.1 |
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// https://github.com/NVIDIA/FasterTransformer/blob/release/v5.2.1_tag/src/fastertransformer/kernels/decoder_masked_multihead_attention/decoder_masked_multihead_attention_128.cu |
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/* |
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* Copyright (c) 2020-2022, NVIDIA CORPORATION. All rights reserved. |
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* |
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* Licensed under the Apache License, Version 2.0 (the "License"); |
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* you may not use this file except in compliance with the License. |
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* You may obtain a copy of the License at |
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* |
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* http://www.apache.org/licenses/LICENSE-2.0 |
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* |
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* Unless required by applicable law or agreed to in writing, software |
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* distributed under the License is distributed on an "AS IS" BASIS, |
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. |
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* See the License for the specific language governing permissions and |
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* limitations under the License. |
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*/ |
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//////////////////////////////////////////////////////////////////////////////////////////////////// |
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size_t smem_sz = mmha::smem_size_in_bytes<T, DO_CROSS_ATTENTION>(params, THDS_PER_VALUE, THDS_PER_BLOCK); \ |
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auto kernel = mmha::masked_multihead_attention_kernel<T, Dh, Dh_MAX, THDS_PER_KEY, THDS_PER_VALUE, \ |
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THDS_PER_BLOCK, DO_CROSS_ATTENTION>; \ |
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cudaFuncSetAttribute(kernel, cudaFuncAttributeMaxDynamicSharedMemorySize, smem_sz); \ |
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dim3 grid(params.nnz_head_idx == nullptr ? params.num_heads : params.nnz_heads, params.batch_size); \ |
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kernel<<<grid, THDS_PER_BLOCK, smem_sz, stream>>>(params) |
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//////////////////////////////////////////////////////////////////////////////////////////////////// |
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// !!! Specialize the launcher for Cross attention |
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template<typename T, int Dh, int Dh_MAX, typename KERNEL_PARAMS_TYPE> |
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void mmha_launch_kernel(const KERNEL_PARAMS_TYPE& params, const cudaStream_t& stream) |
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{ |
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constexpr int THREADS_PER_VALUE = Dh_MAX * sizeof(T) / 16; |
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constexpr bool DO_CROSS_ATTENTION = std::is_same<KERNEL_PARAMS_TYPE, Cross_multihead_attention_params<T>>::value; |
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int tlength = (DO_CROSS_ATTENTION) ? params.memory_max_len : params.timestep; |
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// printf("tlength, CROSS_ATTENTION = %d, %d\n", tlength, DO_CROSS_ATTENTION); |
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if (tlength < 32) { |
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MMHA_LAUNCH_KERNEL(T, Dh, Dh_MAX, 4, THREADS_PER_VALUE, 64, DO_CROSS_ATTENTION, stream); |
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} |
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else if (tlength < 2048) { |
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MMHA_LAUNCH_KERNEL(T, Dh, Dh_MAX, 2, THREADS_PER_VALUE, 128, DO_CROSS_ATTENTION, stream); |
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} |
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else { |
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MMHA_LAUNCH_KERNEL(T, Dh, Dh_MAX, 1, THREADS_PER_VALUE, 256, DO_CROSS_ATTENTION, stream); |
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} |
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} |
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//////////////////////////////////////////////////////////////////////////////////////////////////// |
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template<typename T, typename KERNEL_PARAMS_TYPE> |
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void multihead_attention_(const KERNEL_PARAMS_TYPE& params, const cudaStream_t& stream) |
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{ |
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switch (params.hidden_size_per_head) { |
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case 32: |
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mmha_launch_kernel<T, 32, 32, KERNEL_PARAMS_TYPE>(params, stream); |
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break; |
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case 48: |
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mmha_launch_kernel<T, 48, 64, KERNEL_PARAMS_TYPE>(params, stream); |
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break; |
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case 64: |
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mmha_launch_kernel<T, 64, 64, KERNEL_PARAMS_TYPE>(params, stream); |
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break; |
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case 80: |
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mmha_launch_kernel<T, 80, 128, KERNEL_PARAMS_TYPE>(params, stream); |
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break; |
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case 96: |
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mmha_launch_kernel<T, 96, 128, KERNEL_PARAMS_TYPE>(params, stream); |
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break; |
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case 128: |
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mmha_launch_kernel<T, 128, 128, KERNEL_PARAMS_TYPE>(params, stream); |
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break; |
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case 160: |
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mmha_launch_kernel<T, 160, 256, KERNEL_PARAMS_TYPE>(params, stream); |
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break; |
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case 192: |
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mmha_launch_kernel<T, 192, 256, KERNEL_PARAMS_TYPE>(params, stream); |
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break; |
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case 224: |
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mmha_launch_kernel<T, 224, 256, KERNEL_PARAMS_TYPE>(params, stream); |
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break; |
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case 256: |
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mmha_launch_kernel<T, 256, 256, KERNEL_PARAMS_TYPE>(params, stream); |
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break; |
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default: |
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assert(false); |
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} |
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} |
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//////////////////////////////////////////////////////////////////////////////////////////////////// |
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void masked_multihead_attention(const Masked_multihead_attention_params<float>& params, const cudaStream_t& stream) |
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{ |
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multihead_attention_<float, Masked_multihead_attention_params<float>>(params, stream); |
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} |
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//////////////////////////////////////////////////////////////////////////////////////////////////// |
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void masked_multihead_attention(const Masked_multihead_attention_params<uint16_t>& params, const cudaStream_t& stream) |
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{ |
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multihead_attention_<uint16_t, Masked_multihead_attention_params<uint16_t>>(params, stream); |
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} |
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//////////////////////////////////////////////////////////////////////////////////////////////////// |
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void masked_multihead_attention(const Masked_multihead_attention_params<__nv_bfloat16>& params, |
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const cudaStream_t& stream) |
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{ |
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multihead_attention_<__nv_bfloat16, Masked_multihead_attention_params<__nv_bfloat16>>(params, stream); |
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} |
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//////////////////////////////////////////////////////////////////////////////////////////////////// |
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void cross_multihead_attention(const Cross_multihead_attention_params<float>& params, const cudaStream_t& stream) |
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{ |
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multihead_attention_<float, Cross_multihead_attention_params<float>>(params, stream); |
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} |
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//////////////////////////////////////////////////////////////////////////////////////////////////// |
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void cross_multihead_attention(const Cross_multihead_attention_params<uint16_t>& params, const cudaStream_t& stream) |
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{ |
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multihead_attention_<uint16_t, Cross_multihead_attention_params<uint16_t>>(params, stream); |
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} |
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//////////////////////////////////////////////////////////////////////////////////////////////////// |
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void cross_multihead_attention(const Cross_multihead_attention_params<__nv_bfloat16>& params, |
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const cudaStream_t& stream) |
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{ |
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multihead_attention_<__nv_bfloat16, Cross_multihead_attention_params<__nv_bfloat16>>(params, stream); |
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} |
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//////////////////////////////////////////////////////////////////////////////////////////////////// |
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