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297 lines
10 KiB
297 lines
10 KiB
import torch
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import triton
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import triton.language as tl
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# Triton 2.1.0
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# supports two types of cache layouts
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# 1. [num_blocks, num_kv_heads, block_size, head_dim]
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# 2. [num_blocks, num_kv_heads, head_dim // x, block_size, x]
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@triton.jit
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def _copy_to_kcache_seqlen_n_kernel(
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K, # K or V
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KCache, # [num_blocks, num_kv_heads, head_dim // x, block_size, x]
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BLOCK_TABLES,
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seq_lengths,
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stride_kt,
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stride_kh,
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stride_kd,
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stride_kcb,
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stride_kch,
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stride_kcsplit_x,
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stride_kcs,
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stride_kcx,
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stride_bts,
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stride_btb,
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block_size,
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n_tokens,
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HEAD_DIM: tl.constexpr,
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KCACHE_X: tl.constexpr,
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):
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# `n_tokens` is used to specify the number of tokens to copy for each sequence
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# When n_tokens > 1, tokens from different sequences are packed into the first dimension of the grid,
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# `seq_lengths` must be the lengths of sequences counting the number of tokens to copy
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# E.g. if n_tokens = 5, seq_lengths = [12, 15], then the already-copied position ids are [0-6, 0-9]
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# for the two sequences, respectively. And the position ids to be copied are [7-11, 9-14].
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# When n_tokens = 1, consider token idx as the sequence idx, since it's only used during regular decoding stage
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cur_token_idx = tl.program_id(0)
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cur_seq_idx = cur_token_idx // n_tokens
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# `cur_token_shift` is only valid and functional when `n_tokens` > 1
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cur_token_shift = cur_token_idx - (n_tokens * (cur_seq_idx + 1))
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cur_kv_head_idx = tl.program_id(1)
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split_x_idx = tl.program_id(2)
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past_kv_seq_len = tl.load(seq_lengths + cur_seq_idx) + cur_token_shift
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last_bt_block_idx = past_kv_seq_len // block_size
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block_table_ptr = BLOCK_TABLES + cur_seq_idx * stride_bts
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block_id = tl.load(block_table_ptr + last_bt_block_idx * stride_btb)
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offset_last_block = past_kv_seq_len % block_size
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offsets_dmodel = split_x_idx * KCACHE_X + tl.arange(0, KCACHE_X)
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offsets_k = cur_token_idx * stride_kt + cur_kv_head_idx * stride_kh + offsets_dmodel * stride_kd
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k = tl.load(K + offsets_k)
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offsets_kcache = (
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block_id * stride_kcb
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+ cur_kv_head_idx * stride_kch
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+ split_x_idx * stride_kcsplit_x
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+ offset_last_block * stride_kcs
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+ tl.arange(0, KCACHE_X)
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)
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tl.store(KCache + offsets_kcache, k)
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return
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# Triton 2.1.0
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@triton.jit
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def _copy_to_kvcache_seqlen1_kernel(
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K,
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V,
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KCache,
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VCache,
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BLOCK_TABLES,
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context_lengths,
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stride_kt,
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stride_kh,
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stride_kd,
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stride_vt,
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stride_vh,
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stride_vd,
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stride_kcb,
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stride_kch,
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stride_kcsplit_x,
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stride_kcs,
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stride_kcd,
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stride_vcb,
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stride_vch,
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stride_vcs,
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stride_vcd,
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stride_bts,
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stride_btb,
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block_size,
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HEAD_DIM: tl.constexpr,
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KCACHE_X: tl.constexpr,
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):
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cur_seq_idx = tl.program_id(0)
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cur_kv_head_idx = tl.program_id(1)
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past_kv_seq_len = tl.load(context_lengths + cur_seq_idx) - 1
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last_bt_block_idx = past_kv_seq_len // block_size
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block_table_ptr = BLOCK_TABLES + cur_seq_idx * stride_bts
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block_id = tl.load(block_table_ptr + last_bt_block_idx * stride_btb)
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offsets_in_last_block = past_kv_seq_len % block_size
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range_x = tl.arange(0, KCACHE_X)
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offsets_dmodel_x_partition = tl.arange(0, KCACHE_X)
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for split_x in tl.static_range(HEAD_DIM // KCACHE_X):
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offsets_dmodel_x_partition = tl.arange(split_x * KCACHE_X, (split_x + 1) * KCACHE_X)
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offsets_k = cur_seq_idx * stride_kt + cur_kv_head_idx * stride_kh + offsets_dmodel_x_partition * stride_kd
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k = tl.load(K + offsets_k)
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offsets_v = cur_seq_idx * stride_vt + cur_kv_head_idx * stride_vh + offsets_dmodel_x_partition * stride_vd
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v = tl.load(V + offsets_v)
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offsets_kcache = (
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block_id * stride_kcb
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+ cur_kv_head_idx * stride_kch
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+ split_x * stride_kcsplit_x
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+ offsets_in_last_block * stride_kcs
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+ range_x
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)
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tl.store(KCache + offsets_kcache, k)
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offsets_vcache = (
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block_id * stride_vcb
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+ cur_kv_head_idx * stride_vch
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+ offsets_in_last_block * stride_vcs
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+ offsets_dmodel_x_partition * stride_vcd
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)
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tl.store(VCache + offsets_vcache, v)
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return
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def copy_k_to_blocked_cache(
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k: torch.Tensor,
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k_cache: torch.Tensor,
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kv_lengths: torch.Tensor,
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block_tables: torch.Tensor,
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n: int = 1,
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use_new_kcache_layout: bool = False,
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):
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"""
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Copy keys or values to the blocked key/value cache during decoding stage.
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Args:
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k (torch.Tensor): [bsz, 1, num_kv_heads, head_dim]/[bsz, num_kv_heads, head_dim] - Keys or values during decoding with seq len 1.
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[bsz * n, num_kv_heads, head_dim] - Keys or values with seq len n
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k_cache (torch.Tensor): [num_blocks, num_kv_heads, block_size, head_dim] - Blocked key or value cache.
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new KCache Layout [num_blocks, num_kv_heads, head_dim // x, block_size, x]
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kv_lengths (torch.Tensor): [bsz] - Past key/value sequence lengths plus current sequence length for each sequence.
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block_tables (torch.Tensor): [bsz, max_blocks_per_sequence] - Block tables for each sequence.
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n (int): Number of tokens to copy for each sequence. Default to 1.
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use_new_kcache_layout (bool): Whether to use the new layout for kcache. Default to False.
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"""
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assert k.dtype == k_cache.dtype, "Expected consistent dtype for tensor and cache."
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if k.dim() == 4:
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k = k.reshape(-1, k.size(-2), k.size(-1))
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k_shape = k.shape
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bsz, num_kv_heads, head_dim = k_shape
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# NOTE when n > 1, the shape of k is [bsz * n, num_kv_heads, head_dim]
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if n > 1:
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assert bsz % n == 0, "Each sequence should have the same number of tokens to be copied"
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bsz = bsz // n
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assert kv_lengths.shape[0] == block_tables.shape[0] == bsz, (
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f"Got incompatible batch size (number of seqs):\n"
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f" Past kv sequence lengths bsz {kv_lengths.shape[0]}; "
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f" block tables bsz {block_tables.shape[0]}, input k batch size {bsz}"
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)
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k_cache_shape = k_cache.shape
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# Modify if the shape of kv cahce is changed.
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block_size = k_cache_shape[-2]
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x = head_dim
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stride_kcsplit_x, stride_kcs, stride_kcd = 0, k_cache.stride(2), k_cache.stride(3)
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if use_new_kcache_layout:
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# when using kcache layout [num_blocks, num_kv_heads, head_dim // x, block_size, x]
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assert (
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len(k_cache_shape) == 5
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and k_cache_shape[1] == k_shape[1]
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and k_cache_shape[2] * k_cache_shape[4] == k_shape[2]
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), f"Incompatible k_cache shape {k_cache_shape} with k shape {k_shape}"
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x = k_cache.size(-1)
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stride_kcsplit_x, stride_kcs, stride_kcd = k_cache.stride()[2:]
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num_warps = 8 if head_dim > 128 else 4
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grid = (bsz * n, num_kv_heads, head_dim // x)
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_copy_to_kcache_seqlen_n_kernel[grid](
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k,
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k_cache,
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block_tables,
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kv_lengths,
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k.stride(0),
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k.stride(1),
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k.stride(2),
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k_cache.stride(0),
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k_cache.stride(1),
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stride_kcsplit_x,
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stride_kcs,
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stride_kcd,
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block_tables.stride(0),
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block_tables.stride(1),
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block_size,
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n_tokens=n,
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HEAD_DIM=head_dim,
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KCACHE_X=x,
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num_warps=num_warps,
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)
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def copy_kv_to_blocked_cache(
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k: torch.Tensor,
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v: torch.Tensor,
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k_cache: torch.Tensor,
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v_cache: torch.Tensor,
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kv_lengths: torch.Tensor,
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block_tables: torch.Tensor,
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use_new_kcache_layout: bool = False,
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):
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"""
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Copy keys or values to the blocked key/value cache during decoding stage.
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Args:
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k (torch.Tensor): [bsz, 1, num_kv_heads, head_dim]/[bsz, num_kv_heads, head_dim] - Keys during decoding with seq len 1.
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v (torch.Tensor): [bsz, 1, num_kv_heads, head_dim]/[bsz, num_kv_heads, head_dim] - Values during decoding with seq len 1.
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k_cache (torch.Tensor): [num_blocks, num_kv_heads, block_size, head_dim] - Blocked key cache.
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v_cache (torch.Tensor): [num_blocks, num_kv_heads, block_size, head_dim] - Blocked value cache.
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kv_lengths (torch.Tensor): [bsz] - Past key/value sequence lengths plus current sequence length for each sequence.
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block_tables (torch.Tensor): [bsz, max_blocks_per_sequence] - Block tables for each sequence.
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use_new_kcache_layout (bool): Whether to use the new layout for kcache. Default to False.
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"""
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k_cache_shape = k_cache.shape
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v_cache_shape = v_cache.shape
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if use_new_kcache_layout:
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assert (
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len(k_cache_shape) == 5
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and k_cache_shape[1] == v_cache_shape[1]
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and k_cache_shape[2] * k_cache_shape[4] == v_cache_shape[3]
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), f"Invalid KCache shape {k_cache_shape} and VCache shape {v_cache_shape}"
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else:
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assert k.size(-1) == k_cache_shape[-1], "Incompatible head dim"
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assert (
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k_cache_shape == v_cache_shape
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), f"Incompatible KCache shape {k_cache_shape} and VCache shape {v_cache_shape}"
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assert v.size(-1) == v_cache_shape[-1], "Incompatible head dim"
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k = k.squeeze(1) if k.dim() == 4 else k
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assert k.dim() == 3, f"Incompatible k dim {k.dim()}"
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v = v.squeeze(1) if v.dim() == 4 else v
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assert v.dim() == 3, f"Incompatible v dim {v.dim()}"
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bsz, num_kv_heads, head_dim = k.shape
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assert kv_lengths.shape[0] == block_tables.shape[0] == bsz, (
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f"Got incompatible batch size (number of seqs):\n"
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f" Past kv sequence lengths bsz {kv_lengths.shape[0]}; "
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f" block tables bsz {block_tables.shape[0]}, input k batch size {bsz}"
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)
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# Modify if the shape of kv cahce is changed.
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block_size = k_cache.size(-2)
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x = head_dim
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stride_kcsplit_x, stride_kcs, stride_kcd = 0, k_cache.stride(2), k_cache.stride(3)
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if use_new_kcache_layout:
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x = k_cache.size(-1)
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stride_kcsplit_x, stride_kcs, stride_kcd = k_cache.stride()[2:]
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num_warps = 8 if head_dim > 128 else 4
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grid = (bsz, num_kv_heads)
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_copy_to_kvcache_seqlen1_kernel[grid](
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k,
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v,
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k_cache,
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v_cache,
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block_tables,
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kv_lengths,
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k.stride(0),
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k.stride(1),
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k.stride(2),
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v.stride(0),
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v.stride(1),
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v.stride(2),
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k_cache.stride(0),
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k_cache.stride(1),
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stride_kcsplit_x,
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stride_kcs,
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stride_kcd,
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v_cache.stride(0),
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v_cache.stride(1),
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v_cache.stride(2),
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v_cache.stride(3),
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block_tables.stride(0),
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block_tables.stride(1),
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block_size,
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HEAD_DIM=head_dim,
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KCACHE_X=x,
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num_warps=num_warps,
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)
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