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import gradio as gr |
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from huggingface_hub import InferenceClient |
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import os |
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import time |
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import asyncio |
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from pipeline import PromptEnhancer |
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""" |
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For more information on `huggingface_hub` Inference API support, please check the docs: https://huggingface.co/docs/huggingface_hub/v0.22.2/en/guides/inference |
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""" |
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async def advancedPromptPipeline(InputPrompt): |
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model="gpt-4o-mini" |
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if model == "gpt-4o": |
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i_cost=5/10**6 |
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o_cost=15/10**6 |
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elif model == "gpt-4o-mini": |
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i_cost=0.15/10**6 |
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o_cost=0.6/10**6 |
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enhancer = PromptEnhancer(model) |
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start_time = time.time() |
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advanced_prompt = await enhancer.enhance_prompt(input_prompt, perform_eval=False) |
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elapsed_time = time.time() - start_time |
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yield { |
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"model": model, |
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"elapsed_time": elapsed_time, |
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"prompt_tokens": enhancer.prompt_tokens, |
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"completion_tokens": enhancer.completion_tokens, |
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"approximate_cost": (enhancer.prompt_tokens*i_cost)+(enhancer.completion_tokens*o_cost), |
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"inout_prompt": input_prompt, |
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"advanced_prompt": advanced_prompt["advanced_prompt"], |
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} |
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def respond( |
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message, |
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history: list[tuple[str, str]], |
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system_message, |
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max_tokens, |
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temperature, |
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top_p, |
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): |
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messages = [{"role": "system", "content": system_message}] |
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for val in history: |
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if val[0]: |
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messages.append({"role": "user", "content": val[0]}) |
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if val[1]: |
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messages.append({"role": "assistant", "content": val[1]}) |
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messages.append({"role": "user", "content": message}) |
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response = "" |
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for message in client.chat_completion( |
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messages, |
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max_tokens=max_tokens, |
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stream=True, |
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temperature=temperature, |
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top_p=top_p, |
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): |
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token = message.choices[0].delta.content |
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response += token |
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yield response |
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""" |
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For information on how to customize the ChatInterface, peruse the gradio docs: https://www.gradio.app/docs/chatinterface |
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""" |
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demo = gr.ChatInterface( |
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advancedPromptPipeline, |
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) |
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if __name__ == "__main__": |
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demo.launch() |