[MUSA][Diffusion] Fix fa3 API on MT MUSA (#23646)
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@@ -7,6 +7,7 @@ import torch
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from sglang.jit_kernel.utils import cache_once
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from sglang.kernel_api_logging import debug_kernel_api
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from sglang.srt.environ import envs
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from sglang.srt.utils import get_device_capability, is_musa
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logger = logging.getLogger(__name__)
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@@ -89,12 +90,12 @@ def _is_fa3_supported(device=None) -> bool:
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# https://docs.nvidia.com/cuda/cuda-c-programming-guide/#shared-memory-8-x
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# And for sgl-kernel right now, we can build fa3 on sm80/sm86/sm89/sm90a.
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# That means if you use A100/A*0/L20/L40/L40s/4090 you can use fa3.
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if torch.version.cuda is None:
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return False
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return (torch.version.cuda >= "12.3") and (
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torch.cuda.get_device_capability(device)[0] == 9
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or torch.cuda.get_device_capability(device)[0] == 8
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)
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major, minor = get_device_capability()
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if is_musa():
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return major >= 3
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if torch.version.cuda is not None and torch.version.cuda >= "12.3":
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return major == 9 or major == 8
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return False
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@debug_kernel_api
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@@ -211,31 +212,30 @@ def flash_attn_varlen_func(
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"flash_attn at sgl-kernel is only supported on sm90 and above"
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)
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return _call_fa3_kernel(
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_load_fa3_kernels()["flash_attn_varlen_func"],
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q,
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k,
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v,
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cu_seqlens_q,
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cu_seqlens_k,
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max_seqlen_q,
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max_seqlen_k,
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seqused_q,
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seqused_k,
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page_table,
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softmax_scale,
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causal,
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qv,
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q_descale,
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k_descale,
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v_descale,
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window_size,
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attention_chunk,
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softcap,
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num_splits,
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pack_gqa,
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sm_margin,
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return_softmax_lse,
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sinks,
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return _load_fa3_kernels()["flash_attn_varlen_func"](
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q=q,
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k=k,
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v=v,
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cu_seqlens_q=cu_seqlens_q,
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cu_seqlens_k=cu_seqlens_k,
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max_seqlen_q=max_seqlen_q,
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max_seqlen_k=max_seqlen_k,
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seqused_q=seqused_q,
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seqused_k=seqused_k,
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page_table=page_table,
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softmax_scale=softmax_scale,
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causal=causal,
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qv=qv,
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q_descale=q_descale,
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k_descale=k_descale,
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v_descale=v_descale,
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window_size=window_size,
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attention_chunk=attention_chunk,
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softcap=softcap,
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num_splits=num_splits,
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pack_gqa=pack_gqa,
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sm_margin=sm_margin,
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return_softmax_lse=return_softmax_lse,
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sinks=sinks,
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out=out,
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)
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@@ -10,6 +10,7 @@ from einops import rearrange, repeat
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apply_rotary_emb = None
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from sglang.jit_kernel.flash_attention_v3 import _is_fa3_supported
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from sglang.test.ci.ci_register import register_cuda_ci
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register_cuda_ci(est_time=120, suite="stage-b-kernel-unit-1-gpu-large")
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@@ -21,21 +22,6 @@ def is_hopper():
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return torch.cuda.get_device_properties(0).major == 9
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def is_fa3_supported(device=None) -> bool:
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# There some fa3 FYI
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# FA3 can fail without a enough shared memory for a some shapes, such as higher
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# hidden_dim or some special cases.
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# Right now, fa3 is supported for sm80/sm87 and sm86/sm89. The main different
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# Between sm80/sm87 and sm86/sm89 is the shared memory size. you can follow the link below for more information
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# https://docs.nvidia.com/cuda/cuda-c-programming-guide/#shared-memory-8-x
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# And for sgl-kernel right now, we can build fa3 on sm80/sm86/sm89/sm90a.
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# That means if you use A100/A*0/L20/L40/L40s/4090 you can use fa3.
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return (torch.version.cuda >= "12.3") and (
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torch.cuda.get_device_capability(device)[0] == 9
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or torch.cuda.get_device_capability(device)[0] == 8
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)
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DISABLE_BACKWARD = True
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# For CI test, we close them to True.
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# DISABLE_SPLIT = os.getenv("FLASH_ATTENTION_DISABLE_SPLIT", "FALSE") == "TRUE"
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@@ -467,8 +453,8 @@ def generate_qkv(
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@pytest.mark.skipif(
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not is_fa3_supported(),
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reason="flash_attn at sgl-kernel is only supported on sm90 or sm80",
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not _is_fa3_supported(),
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reason="flash_attn at sgl-kernel is only supported on CUDA sm90, sm80 or MUSA >= mp31",
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)
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# @pytest.mark.parametrize("dtype", [torch.float16, torch.bfloat16, torch.float8_e4m3fn])
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@pytest.mark.parametrize(
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@@ -1039,8 +1025,8 @@ def _generate_block_kvcache(
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@pytest.mark.skipif(
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not is_fa3_supported(),
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reason="flash_attn at sgl-kernel is only supported on sm90 or sm80",
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not _is_fa3_supported(),
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reason="flash_attn at sgl-kernel is only supported on CUDA sm90, sm80 or MUSA >= mp31",
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)
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# @pytest.mark.parametrize("dtype", [torch.float16, torch.bfloat16, torch.float8_e4m3fn])
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@pytest.mark.parametrize(
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