195 lines
5.9 KiB
C++
195 lines
5.9 KiB
C++
/******************************************************************************
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* Copyright (c) 2023, Tri Dao.
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******************************************************************************/
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#pragma once
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#include <cuda.h>
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#include <vector>
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// #ifdef OLD_GENERATOR_PATH
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// #include <ATen/CUDAGeneratorImpl.h>
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// #else
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// #include <ATen/cuda/CUDAGeneratorImpl.h>
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// #endif
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//
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// #include <ATen/cuda/CUDAGraphsUtils.cuh> // For at::cuda::philox::unpack
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constexpr int TOTAL_DIM = 0;
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constexpr int H_DIM = 1;
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constexpr int D_DIM = 2;
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////////////////////////////////////////////////////////////////////////////////////////////////////
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struct Qkv_params {
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using index_t = int64_t;
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// The QKV matrices.
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void *__restrict__ q_ptr;
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void *__restrict__ k_ptr;
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void *__restrict__ v_ptr;
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// The stride between rows of the Q, K and V matrices.
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index_t q_batch_stride;
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index_t k_batch_stride;
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index_t v_batch_stride;
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index_t q_row_stride;
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index_t k_row_stride;
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index_t v_row_stride;
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index_t q_head_stride;
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index_t k_head_stride;
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index_t v_head_stride;
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// The number of heads.
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int h, h_k;
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// In the case of multi-query and grouped-query attention (MQA/GQA), nheads_k could be
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// different from nheads (query).
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int h_h_k_ratio; // precompute h / h_k,
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};
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////////////////////////////////////////////////////////////////////////////////////////////////////
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struct Flash_fwd_params : public Qkv_params {
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// The O matrix (output).
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void * __restrict__ o_ptr;
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void * __restrict__ oaccum_ptr;
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// The stride between rows of O.
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index_t o_batch_stride;
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index_t o_row_stride;
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index_t o_head_stride;
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// The pointer to the P matrix.
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void * __restrict__ p_ptr;
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// The pointer to the softmax sum.
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void * __restrict__ softmax_lse_ptr;
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void * __restrict__ softmax_lseaccum_ptr;
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// The dimensions.
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int b, seqlen_q, seqlen_k, seqlen_knew, d, seqlen_q_rounded, seqlen_k_rounded, d_rounded, rotary_dim, total_q;
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// The scaling factors for the kernel.
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float scale_softmax;
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float scale_softmax_log2;
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// array of length b+1 holding starting offset of each sequence.
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int * __restrict__ cu_seqlens_q;
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int * __restrict__ cu_seqlens_k;
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// If provided, the actual length of each k sequence.
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int * __restrict__ seqused_k;
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int *__restrict__ blockmask;
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// The K_new and V_new matrices.
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void * __restrict__ knew_ptr;
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void * __restrict__ vnew_ptr;
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// The stride between rows of the Q, K and V matrices.
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index_t knew_batch_stride;
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index_t vnew_batch_stride;
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index_t knew_row_stride;
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index_t vnew_row_stride;
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index_t knew_head_stride;
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index_t vnew_head_stride;
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// The cos and sin matrices for rotary embedding.
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void * __restrict__ rotary_cos_ptr;
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void * __restrict__ rotary_sin_ptr;
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// The indices to index into the KV cache.
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int * __restrict__ cache_batch_idx;
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// Paged KV cache
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int * __restrict__ block_table;
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index_t block_table_batch_stride;
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int page_block_size;
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// The dropout probability (probability of keeping an activation).
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float p_dropout;
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// uint32_t p_dropout_in_uint;
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// uint16_t p_dropout_in_uint16_t;
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uint8_t p_dropout_in_uint8_t;
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// Scale factor of 1 / (1 - p_dropout).
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float rp_dropout;
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float scale_softmax_rp_dropout;
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// Local window size
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int window_size_left, window_size_right;
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float softcap;
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// Random state.
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// at::PhiloxCudaState philox_args;
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// Pointer to the RNG seed (idx 0) and offset (idx 1).
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uint64_t * rng_state;
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bool is_bf16;
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bool is_causal;
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// If is_seqlens_k_cumulative, then seqlen_k is cu_seqlens_k[bidb + 1] - cu_seqlens_k[bidb].
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// Otherwise it's cu_seqlens_k[bidb], i.e., we use cu_seqlens_k to store the sequence lengths of K.
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bool is_seqlens_k_cumulative;
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bool is_rotary_interleaved;
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int num_splits; // For split-KV version
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void * __restrict__ alibi_slopes_ptr;
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index_t alibi_slopes_batch_stride;
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bool unpadded_lse; // For varlen paths: LSE is in [nheads, total_seqlen_q] format instead of [b, nheads, seqlen_q].
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bool seqlenq_ngroups_swapped; // q has been transposed from (b, 1, (nheads_kv ngroups), d) to (b, ngroups, nheads_kv, d).
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};
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////////////////////////////////////////////////////////////////////////////////////////////////////
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struct Flash_bwd_params : public Flash_fwd_params {
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// The dO and dQKV matrices.
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void *__restrict__ do_ptr;
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void *__restrict__ dq_ptr;
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void *__restrict__ dk_ptr;
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void *__restrict__ dv_ptr;
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// To accumulate dQ
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void *__restrict__ dq_accum_ptr;
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void *__restrict__ dk_accum_ptr;
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void *__restrict__ dv_accum_ptr;
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// // To accumulate dK and dV in case we're splitting the bwd along seqlen_q
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// dimension void *__restrict__ dk_accum_ptr; void *__restrict__
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// dv_accum_ptr;
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// The stride between rows of the dO, dQ, dK and dV matrices.
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// TD [2022-04-16]: We're using 32-bit indexing to save registers.
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// The code probably won't work for arrays larger than 2GB.
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index_t do_batch_stride;
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index_t do_row_stride;
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index_t do_head_stride;
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index_t dq_batch_stride;
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index_t dk_batch_stride;
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index_t dv_batch_stride;
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index_t dq_row_stride;
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index_t dk_row_stride;
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index_t dv_row_stride;
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index_t dq_head_stride;
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index_t dk_head_stride;
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index_t dv_head_stride;
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// The pointer to the softmax d sum.
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void *__restrict__ dsoftmax_sum;
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bool deterministic;
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index_t dq_accum_split_stride;
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};
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////////////////////////////////////////////////////////////////////////////////////////////////////
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template<typename T, int Headdim, bool Is_causal> void run_mha_fwd_(Flash_fwd_params ¶ms, cudaStream_t stream);
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template<typename T, int Headdim, bool Is_causal> void run_mha_fwd_splitkv_dispatch(Flash_fwd_params ¶ms, cudaStream_t stream);
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template<typename T, int Headdim> void run_mha_bwd_(Flash_bwd_params ¶ms, cudaStream_t stream);
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