from autogen import AssistantAgent, UserProxyAgent, config_list_from_json # Load LLM inference endpoints from an env variable or a file # See https://microsoft.github.io/autogen/docs/FAQ#set-your-api-endpoints # and OAI_CONFIG_LIST_sample config_list = config_list_from_json(env_or_file="OAI_CONFIG_LIST") # You can also set config_list directly as a list, for example, config_list = [{'model': 'gpt-4', 'api_key': '<your OpenAI API key here>'},] assistant = AssistantAgent("assistant", llm_config={"config_list": config_list}) user_proxy = UserProxyAgent("user_proxy", code_execution_config={"work_dir": "coding"}) user_proxy.initiate_chat(assistant, message="Plot a chart of NVDA and TESLA stock price change YTD.") # This initiates an automated chat between the two agents to solve the task
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