Towards Text-based Emotion Detection A Survey and Possible Improvements

E. C. Kao, Chun-Chieh Liu, Ting-Hao Yang, Chang-Tai Hsieh, V. Soo
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引用次数: 108

Abstract

This paper presents an overview of the emerging field of emotion detection from text and describes the current generation of detection methods that are usually divided into the following three main categories: keyword-based, learning-based, and hybrid recommendation approaches. Limitations of current detection methods are examined, and possible solutions are suggested to improve emotion detection capabilities in practical systems, which emphasize on human-computer interactions. These solutions include extracting keywords with semantic analysis, and ontology design with emotion theory of appraisal. Furthermore, a case-based reasoning architecture is proposed to combine these solutions.
基于文本的情感检测:综述及可能的改进
本文概述了新兴的文本情感检测领域,并描述了当前的检测方法,这些方法通常分为以下三大类:基于关键字的、基于学习的和混合推荐的方法。研究了当前检测方法的局限性,并提出了在强调人机交互的实际系统中提高情感检测能力的可能解决方案。这些解决方案包括利用语义分析提取关键词,利用情感评价理论设计本体。在此基础上,提出了一种基于案例的推理体系结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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