Support FP8 Per Token Quant Piecewise (#13272)
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@@ -1322,3 +1322,10 @@ class Fp8KVCacheMethod(BaseKVCacheMethod):
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def __init__(self, quant_config: Fp8Config):
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super().__init__(quant_config)
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if _is_cuda:
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@torch.library.register_fake("sgl_kernel::fp8_scaled_mm")
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def _(mat_a, mat_b, scales_a, scales_b, out_dtype, bias):
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return mat_a.new_empty((mat_a.shape[0], mat_b.shape[-1]), dtype=out_dtype)
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@@ -1849,3 +1849,7 @@ if _is_cuda:
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input, output_q, output_s, group_size, eps, fp8_min, fp8_max, scale_ue8m0
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):
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return
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@torch.library.register_fake("sgl_kernel::sgl_per_token_quant_fp8")
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def _(input, output_q, output_s):
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return
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