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139 lines
4.3 KiB
Python
139 lines
4.3 KiB
Python
"""GEMM and fused-GEMM kernels."""
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from __future__ import annotations
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from typing import TYPE_CHECKING, Optional
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from sglang.kernels.registry import register_kernel
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from sglang.kernels.selector import get_kernel
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from sglang.kernels.spec import (
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CapabilityRequirement,
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FormatSignature,
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KernelBackend,
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KernelSpec,
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)
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if TYPE_CHECKING:
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import torch
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_CUDA = CapabilityRequirement(requires_cuda=True)
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register_kernel(
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KernelSpec(
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op="gemm.fp8_scaled_mm",
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backend=KernelBackend.CUDA_AOT,
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target="sgl_kernel:fp8_scaled_mm",
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format_signature=FormatSignature(
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supported_dtypes=("float8_e4m3fn",),
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description="C = (A_fp8 @ B_fp8) * scales_a * scales_b (+ bias)",
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),
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description="FP8 scaled matmul (sgl_kernel wheel).",
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)
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)
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register_kernel(
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KernelSpec(
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op="gemm.dsv3_fused_a_gemm",
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backend=KernelBackend.CUDA_AOT,
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target="sgl_kernel:dsv3_fused_a_gemm",
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format_signature=FormatSignature(
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supported_dtypes=("bfloat16",),
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description="DeepSeek-V3 fused QKV-A GEMM",
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),
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description="DeepSeek-V3 fused-A GEMM (sgl_kernel wheel).",
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)
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)
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register_kernel(
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KernelSpec(
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op="gemm.dsv3_fused_a_gemm",
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backend=KernelBackend.CUDA_JIT,
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target="sglang.jit_kernel.dsv3_fused_a_gemm:dsv3_fused_a_gemm",
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capability=_CUDA,
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format_signature=FormatSignature(
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supported_dtypes=("bfloat16",),
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description="DeepSeek-V3 fused QKV-A GEMM (drop-in with AOT signature)",
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),
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description="DeepSeek-V3 fused-A GEMM (sglang.jit_kernel).",
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)
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)
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register_kernel(
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KernelSpec(
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op="gemm.dsv3_router_gemm",
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backend=KernelBackend.CUDA_JIT,
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target="sglang.jit_kernel.dsv3_router_gemm:dsv3_router_gemm",
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capability=_CUDA,
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format_signature=FormatSignature(
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supported_dtypes=("bfloat16",),
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description="DeepSeek-V3 router GEMM; num_tokens in [1, 16]",
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),
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description="DeepSeek-V3 router GEMM (sglang.jit_kernel, JIT-only).",
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)
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)
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def fp8_scaled_mm(
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mat_a: torch.Tensor,
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mat_b: torch.Tensor,
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scales_a: torch.Tensor,
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scales_b: torch.Tensor,
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out_dtype: torch.dtype,
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bias: Optional[torch.Tensor] = None,
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) -> torch.Tensor:
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"""FP8 scaled matmul: ``(mat_a @ mat_b) * scales_a * scales_b (+ bias)``."""
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return get_kernel("gemm.fp8_scaled_mm", KernelBackend.CUDA_AOT)(
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mat_a, mat_b, scales_a, scales_b, out_dtype, bias
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)
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def dsv3_fused_a_gemm(
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mat_a: torch.Tensor,
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mat_b: torch.Tensor,
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output: Optional[torch.Tensor] = None,
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) -> torch.Tensor:
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"""DeepSeek-V3 fused QKV-A GEMM."""
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return get_kernel("gemm.dsv3_fused_a_gemm", KernelBackend.CUDA_AOT)(
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mat_a, mat_b, output
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)
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def dsv3_router_gemm(
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hidden_states: torch.Tensor,
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router_weights: torch.Tensor,
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out_dtype: Optional[torch.dtype] = None,
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output: Optional[torch.Tensor] = None,
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) -> torch.Tensor:
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"""DeepSeek-V3 router GEMM (JIT-backed). ``out_dtype`` defaults to bfloat16."""
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impl = get_kernel("gemm.dsv3_router_gemm", KernelBackend.CUDA_JIT)
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if out_dtype is None:
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return impl(hidden_states, router_weights, output=output)
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return impl(hidden_states, router_weights, out_dtype, output)
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__all__ = ["fp8_scaled_mm", "dsv3_fused_a_gemm", "dsv3_router_gemm"]
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# LoRA SGMV Triton kernels migrated into this group (from lora/triton_ops);
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# registered for inventory. Import them from their modules.
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_TRITON_KERNELS = [
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("chunked_embedding_lora_a", "chunked_embedding_lora_a_forward"),
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("chunked_sgmv_expand", "chunked_sgmv_lora_expand_forward"),
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("chunked_sgmv_shrink", "chunked_sgmv_lora_shrink_forward"),
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("embedding_lora_a", "embedding_lora_a_fwd"),
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("gate_up_lora_b", "gate_up_lora_b_fwd"),
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("qkv_lora_b", "qkv_lora_b_fwd"),
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("sgemm_lora_a", "sgemm_lora_a_fwd"),
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("sgemm_lora_b", "sgemm_lora_b_fwd"),
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("kv_b_lora_absorbed", "step_a_q_fwd"),
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("kv_b_lora_absorbed", "step_b_q_fwd"),
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("kv_b_lora_absorbed", "step_a_v_fwd"),
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("kv_b_lora_absorbed", "step_b_v_fwd"),
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]
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for _mod, _fn in _TRITON_KERNELS:
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register_kernel(
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KernelSpec(
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op=f"gemm.{_fn}",
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backend=KernelBackend.TRITON,
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target=f"sglang.kernels.ops.gemm.{_mod}:{_fn}",
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)
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)
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del _mod, _fn
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