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127
tests/entrypoints/openai/test_chunked_prompt.py
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127
tests/entrypoints/openai/test_chunked_prompt.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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import openai # use the official client for correctness check
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import pytest
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import pytest_asyncio
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from ...utils import RemoteOpenAIServer
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# any model with a chat template should work here
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MODEL_NAME = "Qwen/Qwen3-0.6B"
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@pytest.fixture(scope="module")
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def server():
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args = [
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# use half precision for speed and memory savings in CI environment
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"--dtype",
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"bfloat16",
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"--max-model-len",
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"8192",
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"--enforce-eager",
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"--max-num-seqs",
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"128",
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"--enable-chunked-prefill",
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"--max-num-batched-tokens",
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"1000",
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]
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with RemoteOpenAIServer(MODEL_NAME, args) as remote_server:
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yield remote_server
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@pytest_asyncio.fixture
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async def client(server):
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async with server.get_async_client() as async_client:
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yield async_client
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@pytest.mark.asyncio
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async def test_completion_stream_options_and_logprobs_with_long_prompts(
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client: openai.AsyncOpenAI,
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):
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# Test stream with long prompt
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prompt = "What is the capital of France?" * 400
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stream = await client.completions.create(
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model=MODEL_NAME,
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prompt=prompt,
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max_tokens=5,
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temperature=0.0,
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stream=True,
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stream_options={
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"include_usage": True,
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"continuous_usage_stats": True,
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},
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logprobs=5,
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)
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tokens_received = 0
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finished = False
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async for chunk in stream:
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assert chunk.usage.prompt_tokens >= 0
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assert chunk.usage.completion_tokens >= 0
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assert chunk.usage.total_tokens == (
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chunk.usage.prompt_tokens + chunk.usage.completion_tokens
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)
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if not finished:
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tokens_received += 1
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assert chunk.choices[0].text
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if chunk.choices[0].finish_reason is not None:
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finished = True
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if finished:
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assert chunk.usage.completion_tokens == tokens_received
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@pytest.mark.asyncio
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async def test_chat_completion_stream_options_and_logprobs_with_long_prompts(
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client: openai.AsyncOpenAI,
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):
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# Test stream with long prompt
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messages = [
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{"role": "system", "content": "You are a helpful assistant."},
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{"role": "user", "content": "What is the capital of France?" * 400},
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]
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stream = await client.chat.completions.create(
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model=MODEL_NAME,
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messages=messages,
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max_tokens=5,
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temperature=0.0,
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stream=True,
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stream_options={
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"include_usage": True,
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"continuous_usage_stats": True,
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},
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logprobs=True,
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top_logprobs=5,
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)
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tokens_received = 0
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empty_chunks_received = 0
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finished = False
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async for chunk in stream:
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assert chunk.usage.prompt_tokens >= 0
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assert chunk.usage.completion_tokens >= 0
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assert chunk.usage.total_tokens == (
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chunk.usage.prompt_tokens + chunk.usage.completion_tokens
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)
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if not finished:
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if chunk.choices[0].delta.content == "":
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# when there is no tokens generated
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assert chunk.usage.completion_tokens == 0
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assert chunk.choices[0].logprobs is None
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empty_chunks_received += 1
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else:
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tokens_received += 1
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if chunk.choices[0].finish_reason is not None:
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finished = True
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if finished:
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assert chunk.usage.completion_tokens == tokens_received
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assert empty_chunks_received <= 1
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