2023-07-18 08:21:18 -06:00
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import os
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import torch
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from loguru import logger
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if os.getenv("USE_FLASH_ATTENTION", "").lower() == "false":
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raise ImportError("`USE_FLASH_ATTENTION` is false.")
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if not torch.cuda.is_available():
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raise ImportError("CUDA is not available")
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major, minor = torch.cuda.get_device_capability()
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is_sm75 = major == 7 and minor == 5
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is_sm8x = major == 8 and minor >= 0
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is_sm90 = major == 9 and minor == 0
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HAS_FLASH_ATTN = False
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HAS_FLASH_ATTN_V2 = False
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try:
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try:
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import flash_attn_2_cuda
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except ImportError:
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raise ImportError(
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"Flash Attention V2 is not installed.\n"
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"Use the official Docker image (ghcr.io/huggingface/text-generation-inference:latest) "
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"or install flash attention v2 with `cd server && make install install-flash-attention-v2`"
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)
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if not (is_sm8x or is_sm90):
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raise ImportError(
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f"GPU with CUDA capability {major} {minor} is not supported for "
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"Flash Attention V2"
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)
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HAS_FLASH_ATTN_V2 = True
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except ImportError as e:
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try:
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import flash_attn_cuda
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except ImportError:
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raise ImportError(
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"Flash Attention is not installed.\n"
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"Use the official Docker image (ghcr.io/huggingface/text-generation-inference:latest) "
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"or install flash attention with `cd server && make install install-flash-attention`"
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) from e
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if not (is_sm75 or is_sm8x or is_sm90):
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raise ImportError(
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f"GPU with CUDA capability {major} {minor} is not supported"
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) from e
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logger.warning(f"Unable to use Flash Attention V2: {e}")
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HAS_FLASH_ATTN = True
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def 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,
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max_s,
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softmax_scale,
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2023-09-28 01:55:47 -06:00
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window_size_left=-1,
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2023-07-18 08:21:18 -06:00
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):
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if HAS_FLASH_ATTN_V2:
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return flash_attn_2_cuda.varlen_fwd(
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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,
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cu_seqlens,
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max_s,
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max_s,
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0.0,
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softmax_scale,
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False,
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True,
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2023-09-28 01:55:47 -06:00
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window_size_left,
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0,
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2023-07-18 08:21:18 -06:00
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False,
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None,
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)
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if HAS_FLASH_ATTN:
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2023-09-28 01:55:47 -06:00
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if window_size_left != 0:
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raise NotImplementedError(
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"window_size_left is only available with flash attn v2"
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)
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2023-07-18 08:21:18 -06:00
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# Flash attention v1 requires q, k and v to have the same number of heads
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if k.shape[1] != q.shape[1]:
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# MQA expand
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if k.shape[1] == 1:
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k = k.expand(-1, q.shape[1], -1)
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# Grouped attention reshape
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else:
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original_shape = k.shape
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k = (
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k.unsqueeze(2)
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.expand(-1, -1, q.shape[1] // k.shape[1], -1)
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.reshape(original_shape[0], -1, original_shape[2])
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)
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if v.shape[1] != q.shape[1]:
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# MQA expand
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if v.shape[1] == 1:
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v = v.expand(-1, q.shape[1], -1)
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# Grouped attention reshape
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else:
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original_shape = v.shape
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v = (
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v.unsqueeze(2)
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.expand(-1, -1, q.shape[1] // v.shape[1], -1)
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.reshape(original_shape[0], -1, original_shape[2])
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)
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return flash_attn_cuda.fwd(
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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,
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cu_seqlens,
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max_s,
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max_s,
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0.0,
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softmax_scale,
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False,
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True,
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False,
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0,
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None,
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)
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raise NotImplementedError("flash attention is not installed")
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