对话
计算机科学
杠杆(统计)
有限状态机
人工智能
国家(计算机科学)
推论
机器学习
语言理解
状态图
有限状态
自然语言处理
支持向量机
人机交互
认知心理学
情绪困扰
分类
心理学
苦恼
决策支持系统
作者
Zhao, Yue,Gu QingQing,Wang Xiaoyu,Chen Teng,Jiang Zhonglin,Chen Yong,Ji, Luo
出处
期刊:Cornell University - arXiv
日期:2025-04-17
标识
DOI:10.48550/arxiv.2504.11837
摘要
Emotional support conversation (ESC) aims to alleviate the emotional distress of individuals through effective conversations. Although large language models (LLMs) have obtained remarkable progress on ESC, most of these studies might not define the diagram from the state model perspective, therefore providing a suboptimal solution for long-term satisfaction. To address such an issue, we leverage the Finite State Machine (FSM) on LLMs, and propose a framework called FiSMiness. Our framework allows a single LLM to bootstrap the planning during ESC, and self-reason the seeker's emotion, support strategy and the final response upon each conversational turn. Substantial experiments on ESC datasets suggest that FiSMiness outperforms many baselines, including direct inference, self-refine, chain of thought, finetuning, and external-assisted methods, even those with many more parameters.
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