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Orientation Mining-Driven Approach to Analyze Web Public Sentiment

机译:定向挖掘驱动的网络公众情绪分析方法

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摘要

In recent years, Internet provides a unique opportunity to express and spread public sentiment, which makes the web contents becoming the largest information source of public sentiment. Since web public sentiment reflects people’s attitude to society and politics, the public opinion’s orientation is significant to decision-makers. In this paper, we utilize VSM (vector space model) to present the text orientation of web information and offer data-mining approaches to analyze public opinion’s orientation, which can assist decision-makers to steer social information and guide the web public sentiment. To achieve the goal of text orientation analysis, two ways are proposed. Firstly, a novel text orientation analysis method is described to analyze the orientation of original web postings and their replies. Secondly, an improved single-pass clustering algorithm is introduced to cluster the subject of web discussion and discover the hot topics.We also construct a prototype system, named WPSAS (web public sentiment analysis system), as experimental platform to validate the presented methodology. The experimental results show that our methods are effective and efficient.
机译:近年来,Internet提供了表达和传播公众情感的独特机会,这使得Web内容成为公众情感的最大信息源。由于网络公众情绪反映了人们对社会和政治的态度,因此公众舆论的取向对决策者来说非常重要。在本文中,我们使用VSM(向量空间模型)来表示网络信息的文本方向,并提供数据挖掘方法来分析舆论的方向,这可以帮助决策者引导社会信息并指导网络公众情绪。为了实现文本方向分析的目的,提出了两种方法。首先,介绍了一种新颖的文本方向分析方法,用于分析原始网络发布及其回复的方向。其次,引入了一种改进的单遍聚类算法对网络讨论的主题进行聚类并发现热点话题。我们还构建了一个原型系统WPSAS(网络公众情感分析系统)作为实验平台来验证所提出的方法。实验结果表明我们的方法是有效的。

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