[Nightly][Test] Add Qwen3-Next-80B-A3B-Instruct-W8A8 nightly test (#5616)
### What this PR does / why we need it?
There was an accuracy issue with **Qwen3-Next-80B-A3B-Instruct-W8A8**
model in the old version of **Triton-Ascend**, so, we are now adding one
nightly test to maintain it.
### Does this PR introduce _any_ user-facing change?
N/A
### How was this patch tested?
- vLLM version: v0.13.0
- vLLM main:
7157596103
Signed-off-by: IncSec <1790766300@qq.com>
This commit is contained in:
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.github/workflows/nightly_test_a3.yaml
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.github/workflows/nightly_test_a3.yaml
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@@ -132,6 +132,9 @@ jobs:
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- name: qwen3-235b-w8a8
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os: linux-aarch64-a3-16
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tests: tests/e2e/nightly/single_node/models/test_qwen3_235b_w8a8.py
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- name: qwen3-next-w8a8
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os: linux-aarch64-a3-4
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tests: tests/e2e/nightly/single_node/models/test_qwen3_next_w8a8.py
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# TODO: Replace deepseek3.2-exp with deepseek3.2 after nightly tests pass
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# - name: deepseek3_2-exp-w8a8
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# os: linux-aarch64-a3-16
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104
tests/e2e/nightly/single_node/models/test_qwen3_next_w8a8.py
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104
tests/e2e/nightly/single_node/models/test_qwen3_next_w8a8.py
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@@ -0,0 +1,104 @@
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# Copyright (c) 2025 Huawei Technologies Co., Ltd. All Rights Reserved.
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# Copyright 2023 The vLLM team.
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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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# This file is a part of the vllm-ascend project.
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#
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from typing import Any
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import openai
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import pytest
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from vllm.utils.network_utils import get_open_port
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from tests.e2e.conftest import RemoteOpenAIServer
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from tools.aisbench import run_aisbench_cases
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MODELS = [
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"vllm-ascend/Qwen3-Next-80B-A3B-Instruct-W8A8",
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]
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prompts = [
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"San Francisco is a",
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]
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api_keyword_args = {
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"max_tokens": 10,
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}
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aisbench_cases = [{
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"case_type": "accuracy",
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"dataset_path": "vllm-ascend/gsm8k-lite",
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"request_conf": "vllm_api_general_chat",
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"dataset_conf": "gsm8k/gsm8k_gen_0_shot_cot_chat_prompt",
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"max_out_len": 32768,
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"batch_size": 32,
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"baseline": 95,
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"threshold": 5
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}]
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@pytest.mark.asyncio
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@pytest.mark.parametrize("model", MODELS)
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async def test_models(model: str) -> None:
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port = get_open_port()
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env_dict = {
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"OMP_NUM_THREADS": "10",
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"OMP_PROC_BIND": "false",
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"HCCL_BUFFSIZE": "1024",
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}
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server_args = [
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"--quantization",
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"ascend",
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"--async-scheduling",
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"--no-enable-prefix-caching",
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"--data-parallel-size",
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"1",
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"--tensor-parallel-size",
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"4",
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"--enable-expert-parallel",
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"--port",
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str(port),
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"--max-model-len",
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"40960",
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"--max-num-batched-tokens",
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"8192",
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"--max-num-seqs",
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"32",
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"--trust-remote-code",
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"--gpu-memory-utilization",
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"0.65",
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"--compilation-config",
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'{"cudagraph_capture_sizes": [32], "cudagraph_mode":"FULL_DECODE_ONLY"}',
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]
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request_keyword_args: dict[str, Any] = {
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**api_keyword_args,
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}
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with RemoteOpenAIServer(model,
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server_args,
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server_port=port,
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env_dict=env_dict,
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auto_port=False) as server:
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client = server.get_async_client()
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batch = await client.completions.create(
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model=model,
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prompt=prompts,
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**request_keyword_args,
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)
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choices: list[openai.types.CompletionChoice] = batch.choices
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assert choices[0].text, "empty response"
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print(choices)
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# aisbench test
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run_aisbench_cases(model,
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port,
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aisbench_cases,
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server_args=server_args)
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