update grok test (#5171)
This commit is contained in:
47
.github/workflows/pr-test-amd.yml
vendored
47
.github/workflows/pr-test-amd.yml
vendored
@@ -56,8 +56,8 @@ jobs:
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docker exec -w /human-eval ci_sglang pip install -e .
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docker exec -w / ci_sglang mkdir -p /dummy-grok
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mkdir -p dummy-grok && wget https://sharkpublic.blob.core.windows.net/sharkpublic/sglang/dummy_grok.json -P dummy-grok
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docker cp ./dummy-grok ci_sglang:/dummy-grok/
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mkdir -p dummy-grok && wget https://sharkpublic.blob.core.windows.net/sharkpublic/sglang/dummy_grok.json -O dummy-grok/config.json
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docker cp ./dummy-grok ci_sglang:/
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- name: Evaluate Accuracy
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timeout-minutes: 20
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@@ -65,7 +65,6 @@ jobs:
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docker exec -w /sglang-checkout/test/srt -e SGLANG_IS_IN_CI=1 ci_sglang python3 test_eval_accuracy_large.py
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docker exec -w /sglang-checkout/test/srt -e SGLANG_IS_IN_CI=1 ci_sglang python3 test_eval_fp8_accuracy.py
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docker exec -w /sglang-checkout/test/srt -e SGLANG_IS_IN_CI=1 ci_sglang python3 models/test_qwen_models.py
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docker exec -w /sglang-checkout -e SGLANG_IS_IN_CI=1 ci_sglang python3 -m sglang.bench_one_batch --batch-size 32 --input 1024 --output 8 --model /dummy-grok --tokenizer-path Xenova/grok-1-tokenizer --load-format dummy --tp 8 --quantization fp8
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mla-test-1-gpu-amd:
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if: (github.repository == 'sgl-project/sglang' || github.event_name == 'pull_request') &&
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@@ -105,6 +104,48 @@ jobs:
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run: |
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docker exec -w /sglang-checkout/test/srt -e SGLANG_IS_IN_CI=1 ci_sglang python3 test_mla.py
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bench-test-2-gpu-amd:
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if: (github.repository == 'sgl-project/sglang' || github.event_name == 'pull_request') &&
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github.event.pull_request.draft == false
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runs-on: linux-mi300-gpu-2
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steps:
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- name: Checkout code
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uses: actions/checkout@v4
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- name: Setup docker
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run: |
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# Ensure GPU isolation if pod is part of kubernetes setup with DEVICE_FLAG.
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if [ -f "/etc/podinfo/gha-render-devices" ]; then
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DEVICE_FLAG=$(cat /etc/podinfo/gha-render-devices)
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else
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DEVICE_FLAG="--device /dev/dri"
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fi
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docker pull lmsysorg/sglang:v0.4.5-rocm630
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docker run -dt --user root --device=/dev/kfd $DEVICE_FLAG \
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-v ${{ github.workspace }}:/sglang-checkout --ipc=host --group-add video \
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--cap-add=SYS_PTRACE -e HF_TOKEN=${HF_TOKEN} --security-opt seccomp=unconfined \
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-w /sglang-checkout --name ci_sglang \
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lmsysorg/sglang:v0.4.5-rocm630
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- name: Install dependencies
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run: |
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docker exec ci_sglang pip install --upgrade pip
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docker exec ci_sglang pip uninstall sgl-kernel -y || true
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docker exec -w /sglang-checkout/sgl-kernel ci_sglang bash -c "rm -f pyproject.toml && mv pyproject_rocm.toml pyproject.toml && python3 setup_rocm.py install"
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docker exec ci_sglang pip install -e "python[dev_hip]"
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docker exec -w / ci_sglang git clone https://github.com/merrymercy/human-eval.git
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docker exec -w /human-eval ci_sglang pip install -e .
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docker exec -w / ci_sglang mkdir -p /dummy-grok
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mkdir -p dummy-grok && wget https://sharkpublic.blob.core.windows.net/sharkpublic/sglang/dummy_grok.json -O dummy-grok/config.json
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docker cp ./dummy-grok ci_sglang:/
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- name: Evaluate Benchmark
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timeout-minutes: 20
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run: |
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docker exec -w /sglang-checkout/test/srt -e SGLANG_IS_IN_CI=1 ci_sglang python3 models/test_dummy_grok_models.py
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finish:
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if: always()
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needs: [
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@@ -669,8 +669,6 @@ def run_bench_one_batch(model, other_args):
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"python3",
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"-m",
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"sglang.bench_one_batch",
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"--model-path",
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model,
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"--batch-size",
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"1",
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"--input",
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@@ -679,6 +677,8 @@ def run_bench_one_batch(model, other_args):
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"8",
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*[str(x) for x in other_args],
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]
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if model is not None:
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command += ["--model-path", model]
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process = subprocess.Popen(command, stdout=subprocess.PIPE, stderr=subprocess.PIPE)
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try:
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33
test/srt/models/test_dummy_grok_models.py
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33
test/srt/models/test_dummy_grok_models.py
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@@ -0,0 +1,33 @@
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import unittest
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from sglang.test.test_utils import CustomTestCase, is_in_ci, run_bench_one_batch
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class TestDummyGrok1(CustomTestCase):
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def test_dummy_grok_1(self):
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output_throughput = run_bench_one_batch(
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None,
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[
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"--model",
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"/dummy-grok",
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"--tokenizer-path",
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"Xenova/grok-1-tokenizer",
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"--batch-size",
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"2",
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"--tp",
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"2",
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"--quantization",
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"fp8",
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"--load-format",
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"dummy",
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"--json-model-override-args",
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'{"num_hidden_layers": 2}',
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],
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)
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if is_in_ci():
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assert output_throughput > 0, f"{output_throughput=}"
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if __name__ == "__main__":
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unittest.main()
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