The rapid advancement of conversational and chat-based language models has led to remarkable progress in complex task-solving. However, their success heavily relies on human input to guide the conversation, which can be challenging and time-consuming. This paper explores the potential of building scalable techniques to facilitate autonomous cooperation among communicative agents and provide insight into their "cognitive" processes. To address the challenges of achieving autonomous cooperation, we propose a novel communicative agent framework named role-playing. Our approach involves using inception prompting to guide chat agents toward task completion while maintaining consistency with human intentions. We showcase how role-playing can be used to generate conversational data for studying the behaviors and capabilities of chat agents, providing a valuable resource for investigating conversational language models.

Features

  • Install CAMEL from source with poetry
  • Documentation available
  • Examples available
  • Use Open-Source Models as Backends
  • Create powerful agents with our components

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Additional Project Details

Operating Systems

Linux, Mac, Windows

Programming Language

Python

Related Categories

Python Agentic AI Tool, Python AI Agent Frameworks, Python AI Agents, Python Multi-Agent Systems, Python Multi-Agent Frameworks

Registered

2024-09-02