中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
LEGO: A Multi-agent Collaborative Framework with Role-playing and Iterative Feedback for Causality Explanation Generation

文献类型:会议论文

作者Zhitao He1,2; Pengfei Cao1,2; Yubo Chen1,2; Kang Liu1,2; Jun Zhao1,2
出版日期2023-12
会议日期2023-12
会议地点Singapore
英文摘要

Causality Explanation Generation refers to generate an explanation in natural language given an initial cause-effect pair. It demands rigorous explicit rationales to demonstrate the acquisition of implicit commonsense knowledge, which is unlikely to be easily memorized, making it challenging for large language models since they are often suffering from spurious causal associations when they encounter the content that does not exist in their memory. In this work, we introduce LEGO, a Multi-agent Collaborative Framework with Role-playing and Iterative Feedback for causality explanation generation. Specifically, we treat LLM as character malleable LEGO block and utilize role-playing to assign specific roles to five LLMs. We firstly devise a Fine-grained World Knowledge Integration Module to augment information about tasks for alleviating the phenomenon of spurious causal associations. Then, we leverage an Iterative Feedback and Refinement Module to improve the generated explanation by multi-aspect feedback. Extensive experiments on widely used WIKIWHY and e-CARE datasets show the superiority of our multi-agent framework in terms of reasoning about the causality among cause and effect.

源URL[http://ir.ia.ac.cn/handle/173211/57557]  
专题复杂系统认知与决策实验室
通讯作者Jun Zhao
作者单位1.School of Artificial Intelligence, University of Chinese Academy of Sciences
2.The Laboratory of Cognition and Decision Intelligence for Complex Systems, Institute of Automation, Chinese Academy of Sciences
推荐引用方式
GB/T 7714
Zhitao He,Pengfei Cao,Yubo Chen,et al. LEGO: A Multi-agent Collaborative Framework with Role-playing and Iterative Feedback for Causality Explanation Generation[C]. 见:. Singapore. 2023-12.

入库方式: OAI收割

来源:自动化研究所

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