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Cohesive Conversations: Enhancing Authenticity in Multi-Agent Simulated Dialogues (2407.09897v2)

Published 13 Jul 2024 in cs.CL

Abstract: This paper investigates the quality of multi-agent dialogues in simulations powered by LLMs. Analyzing dialogues and memory over multiple sessions revealed significant issues such as repetition, inconsistency, and hallucination, exacerbated by the propagation of erroneous information. To combat these challenges, we propose a novel Screening, Diagnosis, and Regeneration (SDR) framework that detects and corrects utterance errors through a comprehensive process involving immediate issue identification, evidence gathering from past dialogues, and LLM analysis for utterance revision. By incorporating our SDR framework to Generative Agents (Park et al., 2023), we enhance the diversity, consistency, and factualness of the generated dialogues. This work presents a pioneering approach to enhancing dialogue quality in multi-agent simulations, establishing a new standard for future research in the field.

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Authors (3)
  1. KuanChao Chu (5 papers)
  2. Yi-Pei Chen (10 papers)
  3. Hideki Nakayama (59 papers)
Citations (1)
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