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Reprint of: Computational approaches for mining user's opinions on the Web 2.0

机译:转载:在Web 2.0上挖掘用户意见的计算方法

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摘要

The emerging research area of opinion mining deals with computational methods in order to find, extract and systematically analyze people's opinions, attitudes and emotions towards certain topics. While providing interesting market research information, the user generated content existing on the Web 2.0 presents numerous challenges regarding systematic analysis, the differences and unique characteristics of the various social media channels being one of them. This article reports on the determination of such particulari- ties, and deduces their impact on text preprocessing and opinion mining algorithms. The effectiveness of different algorithms is evaluated in order to determine their applicability to the various social media channels. Our research shows that text preprocessing algo- rithms are mandatory for mining opinions on the Web 2.0 and that part of these algorithms are sensitive to errors and mistakes contained in the user generated content.
机译:新兴的观点挖掘研究领域涉及计算方法,以发现,提取和系统分析人们对某些主题的观点,态度和情感。在提供有趣的市场研究信息的同时,用户生成的Web 2.0上存在的内容提出了有关系统分析的众多挑战,各种社交媒体渠道的差异和独特特征就是其中之一。本文报告了此类特性的确定,并推论了它们对文本预处理和意见挖掘算法的影响。评估不同算法的有效性,以确定它们对各种社交媒体渠道的适用性。我们的研究表明,文本预处理算法对于在Web 2.0上挖掘意见是必不可少的,并且这些算法的一部分对用户生成的内容中包含的错误和错误敏感。

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