anthropic_example_chat.py 1.71 KB
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"""
Usage:
export ANTHROPIC_API_KEY=sk-******
python3 anthropic_example_chat.py
"""
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import sglang as sgl
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@sgl.function
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def multi_turn_question(s, question_1, question_2):
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    s += sgl.user(question_1)
    s += sgl.assistant(sgl.gen("answer_1", max_tokens=256))
    s += sgl.user(question_2)
    s += sgl.assistant(sgl.gen("answer_2", max_tokens=256))
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def single():
    state = multi_turn_question.run(
        question_1="What is the capital of the United States?",
        question_2="List two local attractions.",
    )
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    for m in state.messages():
        print(m["role"], ":", m["content"])

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    print("\n-- answer_1 --\n", state["answer_1"])
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def stream():
    state = multi_turn_question.run(
        question_1="What is the capital of the United States?",
        question_2="List two local attractions.",
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        stream=True,
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    )

    for out in state.text_iter():
        print(out, end="", flush=True)
    print()


def batch():
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    states = multi_turn_question.run_batch(
        [
            {
                "question_1": "What is the capital of the United States?",
                "question_2": "List two local attractions.",
            },
            {
                "question_1": "What is the capital of France?",
                "question_2": "What is the population of this city?",
            },
        ]
    )
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    for s in states:
        print(s.messages())


if __name__ == "__main__":
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    sgl.set_default_backend(sgl.Anthropic("claude-3-haiku-20240307"))
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    # Run a single request
    print("\n========== single ==========\n")
    single()

    # Stream output
    print("\n========== stream ==========\n")
    stream()

    # Run a batch of requests
    print("\n========== batch ==========\n")
    batch()