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User-weighted sentiment analysis for financial community on Twitter

机译:推特上金融社区的用户加权情绪分析

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Sentiment analysis is a popular research area in computer science. It aims to determine the attitude of a person with respect to some topic, such as his mood or opinion from textual documents generated by the person. With the proliferation of social micro-blogging sites, opinion text has become available in digital forms, thus enabling research on sentiment analysis to both deepen and broaden in different sociological fields, particularly in the finance field. In this paper, we propose a novel sentiment analysis method which added new user metrics to classical Naive Bayes based sentiment analysis method and applies it to the finance field. We also analyze the correlation between the mood of the financial community and the behavior of the stock exchange of Turkey, namely BIST 100 using Spearman's rank correlation coefficient (SRCC) method. Our empirical studies show that the proposed sentiment analysis method (SRCC value 0.5634) computes a moderate positive correlation between stock market behavior and the sentiment polarity of financial community.
机译:情绪分析是计算机科学的流行研究区。它旨在确定一个人对某些话题的态度,例如他从该人产生的文本文件中的情绪或意见。随着社会微博的扩散,意见文本已以数字形式提供的,从而能够研究对不同社会学领域的深化和扩大的情绪分析,特别是在金融领域。在本文中,我们提出了一种新颖的情绪分析方法,将新的用户指标添加到基于古典的贝叶斯的情绪分析方法,并将其应用于金融场。我们还分析了金融界情绪与土耳其证券交易所的行为之间的相关性,即使用Spearman等级相关系数(SRCC)方法的BIST 100。我们的实证研究表明,建议的情绪分析方法(SRCC值0.5634)计算了股票市场行为与金融界的情感极性之间的适度正相关。

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