354 lines
11 KiB
Python
354 lines
11 KiB
Python
# SPDX-License-Identifier: Apache-2.0
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# SPDX-FileCopyrightText: Copyright contributors to the vLLM project
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# Authors:
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# - Burkhard Ringlein <ngl@zurich.ibm.com>
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# - Jan van Lunteren <jvl@zurich.ibm.com>
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# - Chih-Chieh Yang <chih.chieh.yang@ibm.com>
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# - Thomas Parnell <tpa@zurich.ibm.com>
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import triton
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import triton.language as tl
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from vllm.logger import init_logger
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logger = init_logger(__name__)
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@triton.jit
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def cdiv_fn(x, y):
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return (x + y - 1) // y
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@triton.jit
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def apply_softcap(S, x):
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Sdiv = S / x
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p1 = tl.exp(Sdiv)
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p2 = tl.exp(-Sdiv)
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return x * (p1 - p2) / (p1 + p2)
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@triton.jit
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def kernel_unified_attention_2d(
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output_ptr, # [num_tokens, num_query_heads, head_size]
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query_ptr, # [num_tokens, num_query_heads, head_size]
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key_cache_ptr, # [num_blks, blk_size, num_kv_heads, head_size]
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value_cache_ptr, # [num_blks, blk_size, num_kv_heads, head_size]
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sink_ptr, # [num_query_heads]
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block_tables_ptr, # [num_seqs, max_num_blocks_per_seq]
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seq_lens_ptr, # [num_seqs]
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alibi_slopes_ptr, # [num_query_heads]
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scale, # float32
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k_scale, # float32
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v_scale, # float32
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softcap, # float32
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num_query_heads: tl.constexpr, # int
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num_queries_per_kv: tl.constexpr, # int
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block_table_stride: tl.int64, # int
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query_stride_0: tl.int64, # int
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query_stride_1: tl.int64, # int, should be equal to head_size
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output_stride_0: tl.int64, # int
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output_stride_1: tl.int64, # int, should be equal to head_size
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BLOCK_SIZE: tl.constexpr, # int
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HEAD_SIZE: tl.constexpr, # int
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HEAD_SIZE_PADDED: tl.constexpr, # int, must be power of 2
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USE_ALIBI_SLOPES: tl.constexpr, # bool
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USE_SOFTCAP: tl.constexpr, # bool
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USE_SINKS: tl.constexpr, # bool
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SLIDING_WINDOW: tl.constexpr, # int
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stride_k_cache_0: tl.int64, # int
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stride_k_cache_1: tl.int64, # int
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stride_k_cache_2: tl.int64, # int
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stride_k_cache_3: tl.constexpr, # int
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stride_v_cache_0: tl.int64, # int
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stride_v_cache_1: tl.int64, # int
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stride_v_cache_2: tl.int64, # int
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stride_v_cache_3: tl.constexpr, # int
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query_start_len_ptr, # [num_seqs+1]
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BLOCK_Q: tl.constexpr, # int
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num_seqs: tl.int32,
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BLOCK_M: tl.constexpr, # int
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):
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q_block_global_idx = tl.program_id(0)
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kv_head_idx = tl.program_id(1)
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left: tl.int32 = 0
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right = num_seqs
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while left < right:
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mid = (left + right) // 2
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mid_val = tl.load(query_start_len_ptr + mid) // BLOCK_Q + mid
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if mid_val <= q_block_global_idx:
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left = mid + 1
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else:
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right = mid
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seq_idx = left - 1
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q_block_start_idx = tl.load(query_start_len_ptr +
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seq_idx) // BLOCK_Q + seq_idx
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q_block_local_idx = q_block_global_idx - q_block_start_idx
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cur_batch_in_all_start_index = tl.load(query_start_len_ptr + seq_idx)
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cur_batch_in_all_stop_index = tl.load(query_start_len_ptr + seq_idx + 1)
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cur_batch_query_len = cur_batch_in_all_stop_index \
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- cur_batch_in_all_start_index
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if q_block_local_idx * BLOCK_Q >= cur_batch_query_len:
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return
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offs_m = tl.arange(0, BLOCK_M)
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offs_d = tl.arange(0, HEAD_SIZE_PADDED)
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query_pos = q_block_local_idx * BLOCK_Q + offs_m // num_queries_per_kv
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query_offset_0 = cur_batch_in_all_start_index + query_pos
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query_offset_1 = kv_head_idx * num_queries_per_kv + \
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offs_m % num_queries_per_kv
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query_offset = (query_offset_0[:, None] * query_stride_0 +
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query_offset_1[:, None] * query_stride_1 + offs_d[None, :])
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dim_mask = tl.where(offs_d < HEAD_SIZE, 1, 0).to(tl.int1)
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query_mask_0 = tl.where(query_pos < cur_batch_query_len, 1, 0).to(tl.int1)
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query_mask_1 = tl.where(query_offset_1 < num_query_heads, 1, 0).to(tl.int1)
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# Q : (BLOCK_M, HEAD_SIZE_PADDED)
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Q = tl.load(
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query_ptr + query_offset,
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mask=dim_mask[None, :] & query_mask_0[:, None] & query_mask_1[:, None],
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other=0.0,
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)
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block_table_offset = seq_idx * block_table_stride
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if not USE_SINKS:
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M = tl.full([BLOCK_M], float("-inf"), dtype=tl.float32)
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else:
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M = tl.load(
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sink_ptr + query_offset_1,
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mask=query_mask_1,
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other=float("-inf"),
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).to(dtype=tl.float32)
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# M = tl.full([BLOCK_M], float("-inf"), dtype=tl.float32)
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L = tl.full([BLOCK_M], 1.0, dtype=tl.float32)
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acc = tl.zeros([BLOCK_M, HEAD_SIZE_PADDED], dtype=tl.float32)
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# sequence len for this particular sequence
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seq_len = tl.load(seq_lens_ptr + seq_idx)
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# context length for this particular sequences
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context_len = seq_len - cur_batch_query_len
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# alibi slope for this head
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if USE_ALIBI_SLOPES:
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alibi_slope = tl.load(alibi_slopes_ptr + query_offset_1,
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mask=query_mask_1,
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other=0.0)
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num_blocks = cdiv_fn(seq_len, BLOCK_SIZE)
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# iterate through tiles
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for j in range(0, num_blocks):
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physical_block_idx = tl.load(block_tables_ptr + block_table_offset + j)
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offs_n = tl.arange(0, BLOCK_SIZE)
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v_offset = (physical_block_idx * stride_v_cache_0 +
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kv_head_idx * stride_v_cache_2 +
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offs_d[None, :] * stride_v_cache_3 +
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offs_n[:, None] * stride_v_cache_1)
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k_offset = (physical_block_idx * stride_k_cache_0 +
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kv_head_idx * stride_k_cache_2 +
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offs_d[:, None] * stride_k_cache_3 +
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offs_n[None, :] * stride_k_cache_1)
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# K : (HEAD_SIZE, BLOCK_SIZE)
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K_load = tl.load(key_cache_ptr + k_offset,
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mask=dim_mask[:, None],
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other=0.0)
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if K_load.dtype.is_fp8():
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if Q.dtype.is_fp8():
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K = K_load
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else:
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K = (K_load.to(tl.float32) * tl.load(k_scale)).to(Q.dtype)
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else:
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K = K_load
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# V : (BLOCK_SIZE, HEAD_SIZE)
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V_load = tl.load(value_cache_ptr + v_offset,
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mask=dim_mask[None, :],
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other=0.0)
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if V_load.dtype.is_fp8():
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if Q.dtype.is_fp8():
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V = V_load
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else:
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V = (V_load.to(tl.float32) * tl.load(v_scale)).to(Q.dtype)
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else:
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V = V_load
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seq_offset = j * BLOCK_SIZE + offs_n
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seq_mask = seq_offset[None, :] < context_len + query_pos[:, None] + 1
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# S : (BLOCK_M, BLOCK_SIZE)
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S = tl.zeros(shape=(BLOCK_M, BLOCK_SIZE), dtype=tl.float32)
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S += scale * tl.dot(Q, K)
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if USE_SOFTCAP:
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S = apply_softcap(S, softcap)
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S = tl.where(query_mask_1[:, None] & query_mask_0[:, None] & seq_mask,
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S, float("-inf"))
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if SLIDING_WINDOW > 0:
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S = tl.where((context_len + query_pos[:, None] - seq_offset)
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< SLIDING_WINDOW, S, float("-inf"))
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if USE_ALIBI_SLOPES:
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S += alibi_slope[:, None] * (seq_offset - context_len)
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# compute running maximum
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# m_j : (BLOCK_M,)
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m_j = tl.maximum(M, tl.max(S, axis=1))
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# For sliding window there's a chance the max is -inf due to masking of
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# the entire row. In this case we need to set m_j 0 to avoid NaN
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m_j = tl.where(m_j > float("-inf"), m_j, 0.0)
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# P : (BLOCK_M, BLOCK_SIZE)
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P = tl.exp(S - m_j[:, None])
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# l_j : (BLOCK_M,)
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l_j = tl.sum(P, axis=1)
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# alpha : (BLOCK_M, )
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alpha = tl.exp(M - m_j)
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# acc : (BLOCK_M, HEAD_SIZE_PADDED)
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acc = acc * alpha[:, None]
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# update constants
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L = L * alpha + l_j
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M = m_j
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# acc : (BLOCK_M, HEAD_SIZE_PADDED)
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acc += tl.dot(P.to(V.dtype), V)
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# epilogue
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acc = acc / L[:, None]
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output_offset = (query_offset_0[:, None] * output_stride_0 +
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query_offset_1[:, None] * output_stride_1 +
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offs_d[None, :])
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tl.store(
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output_ptr + output_offset,
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acc,
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mask=dim_mask[None, :] & query_mask_0[:, None] & query_mask_1[:, None],
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)
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def unified_attention(
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q,
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k,
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v,
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out,
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cu_seqlens_q,
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max_seqlen_q,
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seqused_k,
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max_seqlen_k,
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softmax_scale,
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causal,
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window_size,
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block_table,
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softcap,
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q_descale,
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k_descale,
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v_descale,
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alibi_slopes=None,
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# Optional tensor for sinks
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sinks=None,
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):
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assert causal, "Only causal attention is supported"
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assert q_descale is None, "Q scales not supported"
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block_size = v.shape[1]
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assert q.element_size() >= 2 or block_size >= 32, \
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"Block size must be at least 32 for fp8"
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if sinks is not None:
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assert sinks.shape[0] == q.shape[1], \
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"Sinks must be num_query_heads size"
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use_alibi_slopes = alibi_slopes is not None
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block_size = v.shape[1]
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num_seqs = len(seqused_k)
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num_query_heads = q.shape[1]
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num_kv_heads = k.shape[2]
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num_queries_per_kv = num_query_heads // num_kv_heads
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head_size = q.shape[2]
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BLOCK_M = 16
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BLOCK_Q = BLOCK_M // num_queries_per_kv
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# Ideally we would launch with kernel with:
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# \sum_i[ceil(query_len[i] / BLOCK_Q)] blocks.
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# However, it is slow to realize the query_lens on cpu.
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# Instead we use upper-bound:
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# \sum_i[ceil(query_len[i] / BLOCK_Q)]
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# <= \sum_i[floor(query_len[i] / BLOCK_Q) + 1]
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# = \sum_i[floor(query_len[i] / BLOCK_Q)] + num_seqs
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# <= floor(\sum_i(query_len[i]) / BLOCK_Q) + num_seqs
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# = floor(q.shape[0] / BLOCK_Q) + num_seqs
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total_num_q_blocks = q.shape[0] // BLOCK_Q + num_seqs
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kernel_unified_attention_2d[(
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total_num_q_blocks,
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num_kv_heads,
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)](
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output_ptr=out,
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query_ptr=q,
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key_cache_ptr=k,
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value_cache_ptr=v,
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sink_ptr=sinks,
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block_tables_ptr=block_table,
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seq_lens_ptr=seqused_k,
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alibi_slopes_ptr=alibi_slopes,
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scale=softmax_scale,
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k_scale=k_descale,
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v_scale=v_descale,
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softcap=softcap,
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num_query_heads=num_query_heads,
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num_queries_per_kv=num_queries_per_kv,
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block_table_stride=block_table.stride(0),
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query_stride_0=q.stride(0),
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query_stride_1=q.stride(1),
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output_stride_0=out.stride(0),
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output_stride_1=out.stride(1),
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BLOCK_SIZE=block_size,
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HEAD_SIZE=head_size,
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HEAD_SIZE_PADDED=triton.next_power_of_2(head_size),
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USE_ALIBI_SLOPES=use_alibi_slopes,
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USE_SOFTCAP=(softcap > 0),
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USE_SINKS=(sinks is not None),
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SLIDING_WINDOW=(1 + window_size[0]),
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stride_k_cache_0=k.stride(0),
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stride_k_cache_1=k.stride(1),
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stride_k_cache_2=k.stride(2),
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stride_k_cache_3=k.stride(3),
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stride_v_cache_0=v.stride(0),
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stride_v_cache_1=v.stride(1),
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stride_v_cache_2=v.stride(2),
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stride_v_cache_3=v.stride(3),
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query_start_len_ptr=cu_seqlens_q,
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BLOCK_Q=BLOCK_Q,
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num_seqs=num_seqs,
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BLOCK_M=BLOCK_M,
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)
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