ECR-Chain: Advancing Generative Language Models to Better Emotion-Cause Reasoners through Reasoning Chains
Zhaopei Huang, Jinming Zhao, Qin Jin

TL;DR
This paper introduces ECR-Chain, a reasoning chain approach inspired by cognitive theory, to improve emotion-cause reasoning in language models, enabling better understanding and explainability of emotions in conversations.
Contribution
The paper proposes a novel step-by-step reasoning method, ECR-Chain, that enhances emotion-cause reasoning in language models by leveraging ChatGPT and automated data construction.
Findings
ChatGPT with ECR-Chain significantly improves CEE performance.
Automated ECR-Chain set construction benefits smaller models.
Models achieve state-of-the-art results with explainable reasoning.
Abstract
Understanding the process of emotion generation is crucial for analyzing the causes behind emotions. Causal Emotion Entailment (CEE), an emotion-understanding task, aims to identify the causal utterances in a conversation that stimulate the emotions expressed in a target utterance. However, current works in CEE mainly focus on modeling semantic and emotional interactions in conversations, neglecting the exploration of the emotion-generation process. This hinders the models from deeply understanding emotions, restricting their ability to produce explainable predictions. In this work, inspired by the emotion generation process of "stimulus-appraisal-emotion" in the cognitive appraisal theory, we introduce a step-by-step reasoning method, Emotion-Cause Reasoning Chain (ECR-Chain), to infer the stimulus from the target emotional expressions in conversations. Specifically, we first introduce…
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Taxonomy
TopicsTopic Modeling · Sentiment Analysis and Opinion Mining · Intelligent Tutoring Systems and Adaptive Learning
MethodsFocus
