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Update assistant.py
Browse files- assistant.py +44 -49
assistant.py
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from openai import OpenAI
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from
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class AIAssistant:
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A wrapper class for consistent LLM API interactions.
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This class provides:
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- Unified interface for different LLM providers
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- Consistent handling of generation parameters
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- Support for streaming responses
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Attributes:
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client: Initialized API client (OpenAI, Anthropic, etc.)
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model: Name of the model to use
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"""
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def __init__(self, client: OpenAI, model: str):
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self.client = client
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self.model = model
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def generate_response(
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"""
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Generate LLM response using
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Args:
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prompt_template:
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stream: Whether to stream the response
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**kwargs: Variables for prompt template
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Example:
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assistant.generate_response(
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prompt_template=template,
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temperature=0.7,
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topic="AI safety"
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)
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"""
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messages
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from typing import Optional, Dict, Any, Union, Generator
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from huggingface_hub import InferenceClient
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from openai import OpenAI
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from prompt_template import PromptTemplate
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class AIAssistant:
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def __init__(self, client: Union[OpenAI, InferenceClient], model: str):
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self.client = client
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self.model = model
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def generate_response(
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self,
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prompt_template: PromptTemplate,
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messages: list[Dict[str, str]],
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generation_params: Optional[Dict] = None,
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stream: bool = True,
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) -> Generator[str, None, None]:
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"""
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Generate LLM response using the provided template and parameters.
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Args:
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prompt_template: PromptTemplate object containing template and parameters
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messages: List of message dictionaries with role and content
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generation_params: Optional generation parameters (overrides template parameters)
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stream: Whether to stream the response
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Yields:
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Streamed response text
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"""
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params = generation_params or prompt_template.parameters
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# Ensure messages are in correct format
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formatted_messages = [
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{"role": msg["role"], "content": str(msg["content"])}
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for msg in messages
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]
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try:
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completion = self.client.chat.completions.create(
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model=self.model,
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messages=formatted_messages,
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stream=stream,
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**params
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)
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if stream:
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response = ""
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for chunk in completion:
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if chunk.choices[0].delta.content is not None:
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response += chunk.choices[0].delta.content
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yield response
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else:
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return completion.choices[0].message.content
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except Exception as e:
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yield f"Error generating response: {str(e)}"
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