38 lines
1.3 KiB
Python
38 lines
1.3 KiB
Python
# Copyright (c) ModelScope Contributors. All rights reserved.
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import os
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from typing import List
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os.environ['CUDA_VISIBLE_DEVICES'] = '0'
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def infer_batch(engine: 'InferEngine', infer_requests: List['InferRequest']):
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request_config = RequestConfig(max_tokens=64, temperature=0)
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resp_list = engine.infer(infer_requests, request_config)
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query0 = infer_requests[0].messages[0]['content']
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print(f'query0: {query0}')
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print(f'response0: {resp_list[0].choices[0].message.content}')
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def run_client(host: str = '127.0.0.1', port: int = 8000):
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engine = InferClient(host=host, port=port)
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print(f'models: {engine.models}')
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infer_requests = [InferRequest(messages=[{'role': 'user', 'content': '浙江 -> 杭州\n安徽 -> 合肥\n四川 ->'}])]
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infer_batch(engine, infer_requests)
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if __name__ == '__main__':
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from swift import DeployArguments, InferClient, InferEngine, InferRequest, RequestConfig, run_deploy
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# NOTE: In a real deployment scenario, please comment out the context of run_deploy.
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with run_deploy(
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DeployArguments(
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model='Qwen/Qwen2.5-1.5B',
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verbose=False,
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log_interval=-1,
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infer_backend='transformers',
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use_chat_template=False)) as port:
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run_client(port=port)
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