An Event-Based Framework for Facilitating Real-Time Sentiment Analysis in Educational Contexts

Weisi Chen, B. Liu, Xu Zhang, I. Qudah
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引用次数: 2

Abstract

Sentiment analysis has been a hot topic nowadays that has been broadly applied in various disciplines such as media and finance, but its application to the education domain is limited to generating insights by applying existing methods to a selected corpus at the individual record level. Many educational data like student forum posts and ongoing course evaluation responses can be categorised as event data. However, insufficient attention is paid to the temporal and influential features of event data in these educational corpora. This paper proposes a novel event-based framework for addressing the complexity of the sentiment analysis process in the context of education. The framework features an event data model for educational sentiment analysis and an architecture that harnesses both sentiment analysis algorithms and the complex event processing technology, aiming to achieve timely warning and action on defined complex events. To validate the framework, a prototype is implemented and applied to detecting student emergency occurrences from university student forum posts.
一个基于事件的框架促进实时情感分析在教育环境
情感分析已成为当今的热门话题,已广泛应用于媒体和金融等各个学科,但其在教育领域的应用仅限于通过将现有方法应用于个人记录级别的选定语料库来产生见解。许多教育数据,如学生论坛帖子和正在进行的课程评估回复,都可以归类为事件数据。然而,对这些教育语料库中事件数据的时代性和影响力特征关注不够。本文提出了一种新的基于事件的框架来解决教育背景下情感分析过程的复杂性。该框架具有用于教育情感分析的事件数据模型和利用情感分析算法和复杂事件处理技术的架构,旨在对定义的复杂事件实现及时预警和行动。为了验证该框架,实现了一个原型,并将其应用于从大学学生论坛帖子中检测学生紧急事件。
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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