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A Web-Based System for Emotion Vector Extraction

机译:基于Web的情感矢量提取系统

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摘要

The ability of assessing the affective information content is of increasing interest in applications of computer science, e.g. in human machine interfaces, recommender systems, social robots. In this project, the architecture of a semantic system of emotions is designed and implemented, to quantify the emotional content of short sentences by evaluating and aggregating the semantic proximity of each term in the sentence from the basic emotions defined in a psychological model of emotions (e.g. Ekman, Plutchick, Lovheim). Our model is parametric with respect to the semantic proximity measures, focusing on web-based proximity measures, where data needed to evaluate the proximity can be retrieved from search engines on the Web. To test the performances of the model, a software system has been developed to both collect the statistical data and perform the emotion analysis. The system automatizes the phases of sentence preprocessing, search engine query, results parsing, semantic proximity calculation and the final phase of ranking of emotions.
机译:评估情感信息内容的能力在计算机科学的应用中越来越受到关注,例如计算机应用。在人机界面,推荐系统,社交机器人中。在该项目中,设计并实现了情感语义系统的体系结构,以通过评估和汇总情感心理模型中定义的基本情感中句子中每个术语的语义接近度来量化短句的情感内容(例如Ekman,Plutchick,Lovheim)。我们的模型相对于语义接近度度量是参数化的,重点是基于Web的接近度度量,其中可以从Web上的搜索引擎检索评估接近度所需的数据。为了测试模型的性能,已经开发了一种软件系统来收集统计数据和执行情绪分析。该系统可自动执行句子预处理,搜索引擎查询,结果解析,语义接近度计算以及情感排名的最后阶段。

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