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benchmarks/kernels/bench_mxfp4_qutlass.py
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191
benchmarks/kernels/bench_mxfp4_qutlass.py
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# SPDX-License-Identifier: Apache-2.0
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# SPDX-FileCopyrightText: Copyright contributors to the vLLM project
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#
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# Copyright (C) 2025 Roberto L. Castro (Roberto.LopezCastro@ist.ac.at).
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# All Rights Reserved.
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#
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# Licensed under the Apache License, Version 2.0 (the "License");
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# you may not use this file except in compliance with the License.
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# You may obtain a copy of the License at
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#
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# http://www.apache.org/licenses/LICENSE-2.0
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#
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# Unless required by applicable law or agreed to in writing, software
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# distributed under the License is distributed on an "AS IS" BASIS,
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# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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# See the License for the specific language governing permissions and
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# limitations under the License.
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#
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import argparse
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import copy
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import itertools
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import torch
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from compressed_tensors.transform.utils.hadamard import deterministic_hadamard_matrix
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from weight_shapes import WEIGHT_SHAPES
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from vllm._custom_ops import fusedQuantizeMx, matmul_mxf4_bf16_tn
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from vllm.model_executor.layers.quantization.qutlass_utils import to_blocked
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from vllm.triton_utils import triton
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PROVIDER_CFGS = {
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"torch-bf16": dict(enabled=True),
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"mxfp4": dict(no_a_quant=False, enabled=True),
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"mxfp4-noquant": dict(no_a_quant=True, enabled=True),
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}
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_enabled = [k for k, v in PROVIDER_CFGS.items() if v["enabled"]]
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def get_hadamard_matrix(group_size: int, dtype: torch.dtype, device: torch.device):
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return (
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deterministic_hadamard_matrix(group_size, dtype=dtype, device=device)
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* group_size**-0.5
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)
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def _quant_weight_mxfp4(
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b: torch.Tensor, forward_hadamard_matrix: torch.Tensor, device: str
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):
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weight_hf_e2m1, weight_hf_e8m0 = fusedQuantizeMx(
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b, forward_hadamard_matrix, method="abs_max"
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)
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weight_hf_scale_block = to_blocked(weight_hf_e8m0, backend="triton")
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return weight_hf_e2m1, weight_hf_scale_block
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def build_mxfp4_runner(cfg, a, b, forward_hadamard_matrix, dtype, device):
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weight_hf_e2m1, weight_hf_scale_block = _quant_weight_mxfp4(
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b, forward_hadamard_matrix, device
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)
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alpha = torch.tensor([1.0], device="cuda")
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if cfg["no_a_quant"]:
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# Pre-quantize activation
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input_hf_e2m1, input_hf_e8m0 = fusedQuantizeMx(
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a, forward_hadamard_matrix, method="abs_max"
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)
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input_hf_scale_block = to_blocked(input_hf_e8m0, backend="triton")
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def run():
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return matmul_mxf4_bf16_tn(
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input_hf_e2m1,
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weight_hf_e2m1,
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input_hf_scale_block,
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weight_hf_scale_block,
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alpha,
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)
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return run
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# Quantize activation on-the-fly
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def run():
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input_hf_e2m1, input_hf_e8m0 = fusedQuantizeMx(
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a, forward_hadamard_matrix, method="abs_max"
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)
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input_hf_scale_block = to_blocked(input_hf_e8m0, backend="triton")
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return matmul_mxf4_bf16_tn(
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input_hf_e2m1,
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weight_hf_e2m1,
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input_hf_scale_block,
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weight_hf_scale_block,
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alpha,
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)
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return run
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@triton.testing.perf_report(
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triton.testing.Benchmark(
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x_names=["batch_size"],
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x_vals=[
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1,
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4,
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8,
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16,
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32,
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64,
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128,
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256,
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512,
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1024,
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2048,
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4096,
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8192,
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16384,
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24576,
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32768,
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],
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x_log=False,
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line_arg="provider",
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line_vals=_enabled,
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line_names=_enabled,
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ylabel="TFLOP/s (larger is better)",
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plot_name="BF16 vs MXFP4 GEMMs",
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args={},
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)
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)
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def benchmark(batch_size, provider, N, K, had_size):
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M = batch_size
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device = "cuda"
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dtype = torch.bfloat16
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a = torch.randn((M, K), device=device, dtype=dtype)
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b = torch.randn((N, K), device=device, dtype=dtype)
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forward_hadamard_matrix = get_hadamard_matrix(had_size, dtype, device)
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quantiles = [0.5, 0.2, 0.8]
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if provider == "torch-bf16":
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ms, min_ms, max_ms = triton.testing.do_bench_cudagraph(
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lambda: torch.nn.functional.linear(a, b), rep=200, quantiles=quantiles
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)
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else:
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cfg = PROVIDER_CFGS[provider]
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run_quant = build_mxfp4_runner(
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cfg, a, b, forward_hadamard_matrix, dtype, device
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)
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ms, min_ms, max_ms = triton.testing.do_bench_cudagraph(
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lambda: run_quant(), rep=200, quantiles=quantiles
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)
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to_tflops = lambda t_ms: (2 * M * N * K) * 1e-12 / (t_ms * 1e-3)
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return to_tflops(ms), to_tflops(max_ms), to_tflops(min_ms)
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def prepare_shapes(args):
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out = []
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for model, tp_size in itertools.product(args.models, args.tp_sizes):
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for KN, tp_dim in copy.deepcopy(WEIGHT_SHAPES[model]):
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KN[tp_dim] //= tp_size
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KN.append(model)
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out.append(KN)
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return out
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if __name__ == "__main__":
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parser = argparse.ArgumentParser()
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parser.add_argument(
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"--models",
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nargs="+",
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type=str,
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default=["meta-llama/Llama-3.3-70B-Instruct"],
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choices=list(WEIGHT_SHAPES.keys()),
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)
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parser.add_argument("--tp-sizes", nargs="+", type=int, default=[1])
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args = parser.parse_args()
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for K, N, model in prepare_shapes(args):
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for had_size in [32, 64, 128]:
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print(f"{model}, N={N} K={K}, HAD={had_size}, BF16 vs MXFP4 GEMMs TFLOP/s:")
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benchmark.run(
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print_data=True,
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show_plots=True,
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save_path=f"bench_mxfp4_res_n{N}_k{K}",
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N=N,
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K=K,
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had_size=had_size,
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)
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print("Benchmark finished!")
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