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[core] support sage attention + FA2 through kernels
#12439
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sayakpaul f630dab
Merge branch 'main' into sage-kernels
sayakpaul 18c3e8e
Merge branch 'main' into sage-kernels
sayakpaul d344134
support automatic dispatch.
sayakpaul 3688c9d
Merge branch 'main' into sage-kernels
sayakpaul 23c173e
Merge branch 'main' into sage-kernels
sayakpaul 1b1a497
disable compile support for now./
sayakpaul 177f5b3
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sayakpaul 4e62a44
Merge branch 'main' into sage-kernels
sayakpaul bd34d93
resolve conflicts.
sayakpaul f9e9bc3
flash too.
sayakpaul 7f9f826
document.
sayakpaul bcfeb8d
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sayakpaul 5e4ab62
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sayakpaul d4ecaaf
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sayakpaul f89889b
Merge branch 'main' into sage-kernels
sayakpaul 823ee2c
Merge branch 'main' into sage-kernels
sayakpaul 8cedc09
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sayakpaul b55768a
Merge branch 'main' into sage-kernels
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| Original file line number | Diff line number | Diff line change |
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| """ | ||
| Copyright (c) 2024 by SageAttention, The HuggingFace team. | ||
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| Licensed under the Apache License, Version 2.0 (the "License"); you may not use this file except in compliance with the | ||
| License. You may obtain a copy of the License at | ||
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| http://www.apache.org/licenses/LICENSE-2.0 | ||
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| Unless required by applicable law or agreed to in writing, software distributed under the License is distributed on an | ||
| "AS IS" BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. See the License for the | ||
| specific language governing permissions and limitations under the License. | ||
| """ | ||
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| """ | ||
| Modified from | ||
| https://github.com/thu-ml/SageAttention/blob/68de3797d163b89d28f9a38026c3b7313f6940d2/sageattention/core.py | ||
| """ | ||
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| import torch # noqa | ||
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| SAGE_ATTENTION_DISPATCH = { | ||
| "sm80": { | ||
| "func": "sageattn_qk_int8_pv_fp16_cuda", | ||
| "kwargs": { | ||
| "tensor_layout": "NHD", | ||
| "is_causal": False, | ||
| "sm_scale": None, | ||
| "return_lse": False, | ||
| "pv_accum_dtype": "fp32", | ||
| }, | ||
| }, | ||
| "sm89": { | ||
| "func": "sageattn_qk_int8_pv_fp8_cuda", | ||
| "kwargs": { | ||
| "tensor_layout": "NHD", | ||
| "is_causal": False, | ||
| "sm_scale": None, | ||
| "return_lse": False, | ||
| "pv_accum_dtype": "fp32+fp16", | ||
| }, | ||
| }, | ||
| "sm90": { | ||
| "func": "sageattn_qk_int8_pv_fp8_cuda_sm90", | ||
| "kwargs": { | ||
| "tensor_layout": "NHD", | ||
| "is_causal": False, | ||
| "sm_scale": None, | ||
| "return_lse": False, | ||
| "pv_accum_dtype": "fp32+fp32", | ||
| }, | ||
| }, | ||
| "sm120": { | ||
| "func": "sageattn_qk_int8_pv_fp8_cuda", | ||
| "kwargs": { | ||
| "tensor_layout": "NHD", | ||
| "is_causal": False, | ||
| "qk_quant_gran": "per_warp", | ||
| "sm_scale": None, | ||
| "return_lse": False, | ||
| "pv_accum_dtype": "fp32+fp16", | ||
| }, | ||
| }, | ||
| } | ||
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| def get_cuda_version(): | ||
| if torch.cuda.is_available(): | ||
| major, minor = torch.cuda.get_device_capability() | ||
| return major, minor | ||
| else: | ||
| raise EnvironmentError("CUDA not found.") | ||
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| def get_cuda_arch_versions(): | ||
| if not torch.cuda.is_available(): | ||
| EnvironmentError("CUDA not found.") | ||
| cuda_archs = [] | ||
| for i in range(torch.cuda.device_count()): | ||
| major, minor = torch.cuda.get_device_capability(i) | ||
| cuda_archs.append(f"sm{major}{minor}") | ||
| return cuda_archs | ||
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| # Unlike the actual implementation, we just maintain function names rather than actual | ||
| # implementations. | ||
| def _get_sage_attn_fn_for_device(): | ||
| """ | ||
| Automatically selects the appropriate implementation of the SageAttention kernel based on the GPU compute | ||
| capability. | ||
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| Parameters ---------- q : torch.Tensor | ||
| The query tensor. Shape: | ||
| - If `tensor_layout` is "HND": ``[batch_size, num_qo_heads, qo_len, head_dim]``. | ||
| - If `tensor_layout` is "NHD": ``[batch_size, qo_len, num_qo_heads, head_dim]``. | ||
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| k : torch.Tensor | ||
| The key tensor. Shape: | ||
| - If `tensor_layout` is "HND": ``[batch_size, num_kv_heads, kv_len, head_dim]``. | ||
| - If `tensor_layout` is "NHD": ``[batch_size, kv_len, num_kv_heads, head_dim]``. | ||
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| v : torch.Tensor | ||
| The value tensor. Shape: | ||
| - If `tensor_layout` is "HND": ``[batch_size, num_kv_heads, kv_len, head_dim]``. | ||
| - If `tensor_layout` is "NHD": ``[batch_size, kv_len, num_kv_heads, head_dim]``. | ||
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| tensor_layout : str | ||
| The tensor layout, either "HND" or "NHD". Default: "HND". | ||
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| is_causal : bool | ||
| Whether to apply causal mask to the attention matrix. Only applicable when qo_len == kv_len. Default: False. | ||
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| sm_scale : Optional[float] | ||
| The scale used in softmax, if not provided, will be set to ``1.0 / sqrt(head_dim)``. | ||
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| return_lse : bool | ||
| Whether to return the log sum of the exponentiated attention weights. Used for cases like Ring Attention. | ||
| Default: False. | ||
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| Returns ------- torch.Tensor | ||
| The output tensor. Shape: | ||
| - If `tensor_layout` is "HND": ``[batch_size, num_qo_heads, qo_len, head_dim]``. | ||
| - If `tensor_layout` is "NHD": ``[batch_size, qo_len, num_qo_heads, head_dim]``. | ||
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| torch.Tensor | ||
| The logsumexp of each row of the matrix QK^T * scaling (e.g., log of the softmax normalization factor). Shape: | ||
| ``[batch_size, num_qo_heads, qo_len]``. Only returned if `return_lse` is True. | ||
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| Note ---- | ||
| - ``num_qo_heads`` must be divisible by ``num_kv_heads``. | ||
| - The tensors `q`, `k`, and `v` must have the dtype ``torch.float16`` or ``torch.bfloat16`` | ||
| - All tensors must be on the same cuda device. | ||
| """ | ||
| device_index = torch.cuda.current_device() | ||
| arch = get_cuda_arch_versions()[device_index] | ||
| return SAGE_ATTENTION_DISPATCH[arch] |
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I don't see their usage, hence removed.