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TwitSenti: A Real-Time Twitter Sentiment Analysis and Visualization Framework

机译:Twitsenti:实时推特情绪分析和可视化框架

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摘要

Twitter is considered as one of the world’s largest social networking sites which allow users to customize their public profile, connect with others and interact with connected users. The proposed work introduces a distributed real-time twitter sentiment analysis and visualization framework by implementing novel algorithms for twitter sentiment analysis called Emotion-Polarity-SentiWordNet. The framework is applied to build an interactive web application called “TwitSenti” which can benefit companies and other organizations in knowing the people’s sentiment towards the aspects such as brands, current events, etc., which in turn helps in quick decision-making and planning marketing strategies. The algorithm is validated against three existing classifiers and hence proved that Emotion-Polarity-SentiWordNet provides highest accuracy value of 85%. Also, the framework showed best scalability results when evaluated through web app as four node clusters, proves to be fast and can scale well with massive data.
机译:Twitter被视为世界上最大的社交网站之一,允许用户自定义其公开概况,与他人联系并与连接的用户交互。拟议的工作通过实施一种名为Emotion-Polarity-SentiwordNet的Twitter情感分析来介绍分布式实时Twitter情感分析和可视化框架。该框架适用于构建一个名为“Twitsenti”的互动Web应用程序,该应用程序可以在知道人们对品牌,当前事件等方面的情绪中受益公司和其他组织,这反过来有助于快速决策和规划市场营销策略。该算法针对三个现有分类器验证,因此证明了情感 - 极性-StentiWordNet提供的最高精度值为85%。此外,该框架显示通过Web应用程序作为四个节点集群进行评估时的最佳可扩展性结果,证明是快速的,并且可以使用大规模数据展现得很好。

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