test_mla.py 4.52 KB
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import unittest
from types import SimpleNamespace

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import requests
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import torch

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from sglang.srt.utils import kill_process_tree
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from sglang.test.few_shot_gsm8k import run_eval as run_eval_few_shot_gsm8k
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from sglang.test.run_eval import run_eval
from sglang.test.test_utils import (
    DEFAULT_MLA_MODEL_NAME_FOR_TEST,
    DEFAULT_TIMEOUT_FOR_SERVER_LAUNCH,
    DEFAULT_URL_FOR_TEST,
    popen_launch_server,
)


class TestMLA(unittest.TestCase):
    @classmethod
    def setUpClass(cls):
        cls.model = DEFAULT_MLA_MODEL_NAME_FOR_TEST
        cls.base_url = DEFAULT_URL_FOR_TEST
        cls.process = popen_launch_server(
            cls.model,
            cls.base_url,
            timeout=DEFAULT_TIMEOUT_FOR_SERVER_LAUNCH,
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            other_args=["--trust-remote-code"],
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        )

    @classmethod
    def tearDownClass(cls):
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        kill_process_tree(cls.process.pid)
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    def test_mmlu(self):
        args = SimpleNamespace(
            base_url=self.base_url,
            model=self.model,
            eval_name="mmlu",
            num_examples=64,
            num_threads=32,
        )

        metrics = run_eval(args)
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        self.assertGreater(metrics["score"], 0.5)
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    def test_mgsm_en(self):
        args = SimpleNamespace(
            base_url=self.base_url,
            model=self.model,
            eval_name="mgsm_en",
            num_examples=None,
            num_threads=1024,
        )

        metrics = run_eval(args)
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        self.assertGreater(metrics["score"], 0.8)
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class TestDeepseekV3(unittest.TestCase):
    @classmethod
    def setUpClass(cls):
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        cls.model = "lmsys/sglang-ci-dsv3-test"
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        cls.base_url = DEFAULT_URL_FOR_TEST
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        other_args = ["--trust-remote-code"]
        if torch.cuda.is_available() and torch.version.cuda:
            other_args.extend(["--enable-torch-compile", "--cuda-graph-max-bs", "2"])
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        cls.process = popen_launch_server(
            cls.model,
            cls.base_url,
            timeout=DEFAULT_TIMEOUT_FOR_SERVER_LAUNCH,
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            other_args=other_args,
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        )

    @classmethod
    def tearDownClass(cls):
        kill_process_tree(cls.process.pid)

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    def test_gsm8k(self):
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        args = SimpleNamespace(
            num_shots=5,
            data_path=None,
            num_questions=200,
            max_new_tokens=512,
            parallel=128,
            host="http://127.0.0.1",
            port=int(self.base_url.split(":")[-1]),
        )
        metrics = run_eval_few_shot_gsm8k(args)
        print(metrics)

        self.assertGreater(metrics["accuracy"], 0.62)


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class TestDeepseekV3MTP(unittest.TestCase):
    @classmethod
    def setUpClass(cls):
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        cls.model = "lmsys/sglang-ci-dsv3-test"
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        cls.base_url = DEFAULT_URL_FOR_TEST
        other_args = ["--trust-remote-code"]
        if torch.cuda.is_available() and torch.version.cuda:
            other_args.extend(
                [
                    "--cuda-graph-max-bs",
                    "2",
                    "--disable-radix",
                    "--enable-torch-compile",
                    "--torch-compile-max-bs",
                    "1",
                    "--speculative-algorithm",
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                    "EAGLE",
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                    "--speculative-draft",
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                    "lmsys/sglang-ci-dsv3-test-NextN",
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                    "--speculative-num-steps",
                    "2",
                    "--speculative-eagle-topk",
                    "4",
                    "--speculative-num-draft-tokens",
                    "4",
                ]
            )
        cls.process = popen_launch_server(
            cls.model,
            cls.base_url,
            timeout=DEFAULT_TIMEOUT_FOR_SERVER_LAUNCH,
            other_args=other_args,
        )

    @classmethod
    def tearDownClass(cls):
        kill_process_tree(cls.process.pid)

    def test_gsm8k(self):
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        requests.get(self.base_url + "/flush_cache")

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        args = SimpleNamespace(
            num_shots=5,
            data_path=None,
            num_questions=200,
            max_new_tokens=512,
            parallel=128,
            host="http://127.0.0.1",
            port=int(self.base_url.split(":")[-1]),
        )
        metrics = run_eval_few_shot_gsm8k(args)
        print(metrics)

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        self.assertGreater(metrics["accuracy"], 0.60)
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        server_info = requests.get(self.base_url + "/get_server_info")
        avg_spec_accept_length = server_info.json()["avg_spec_accept_length"]
        print(f"{avg_spec_accept_length=}")
        self.assertGreater(avg_spec_accept_length, 2.5)

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if __name__ == "__main__":
    unittest.main()