Virtual emotion detection by sentiment analysis

R. Kamdi, Prasheel N. Thakre, Ajinkya P. Nilawar, J. Kene
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Abstract

As websites, social networks, blogs, and online portals proliferate on the internet, authors are producing reviews, opinions, ideas, ratings, and feedback. The emotional content of this writer may be about things like books, people, hotels, items, studies, events, and so on. These emotions have great value for businesses, for governments, and for people. The majority of the writer-generated material requires the usage of text mining algorithms and sentiment analysis, even if this information is meant to be instructive. Sentiment Analysis is a technique in Natural Language Processing (NLP) that tries to identify and extract assessments communicated within a given text. This paper intends to execute different content handling strategies in NLP and use of Valence Aware Dictionary for Sentiment Reasoning (VADER) Model that is sensitive to both polarity (positive/negative) and intensity (strength) of emotion.
基于情感分析的虚拟情感检测
随着网站、社交网络、博客和在线门户网站在互联网上的激增,作者们正在发表评论、观点、想法、评级和反馈。这位作家的情感内容可能是关于书籍、人物、酒店、物品、研究、事件等。这些情绪对企业、政府和人民都有很大的价值。大多数作者生成的材料需要使用文本挖掘算法和情感分析,即使这些信息是有指导意义的。情感分析是自然语言处理(NLP)中的一种技术,它试图识别和提取给定文本中传达的评估。本文拟在NLP中执行不同的内容处理策略,并使用对情绪极性(积极/消极)和强度(强度)都敏感的情绪推理的价感知词典(VADER)模型。
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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