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Discovering the Discriminative Views: Measuring Term Weights for Sentiment Analysis

机译:发现区分性观点:测量术语权重以进行情感分析

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摘要

This paper describes an approach to utilizing term weights for sentiment analysis tasks and shows how various term weighting schemes improve the performance of sentiment analysis systems. Previously, sentiment analysis was mostly studied under data-driven and lexicon-based frameworks. Such work generally exploits textual features for fact-based analysis tasks or lexical indicators from a sentiment lexicon. We propose to model term weighting into a sentiment analysis system utilizing collection statistics, contextual and topic-related characteristics as well as opinion-related properties. Experiments carried out on various datasets show that our approach effectively improves previous methods.
机译:本文介绍了一种将术语权重用于情感分析任务的方法,并说明了各种术语加权方案如何提高情感分析系统的性能。以前,情感分析主要在数据驱动和基于词典的框架下进行研究。这样的工作通常利用文本特征来进行基于事实的分析任务或来自情感词典的词汇指示。我们建议使用集合统计,上下文和主题相关的特征以及与意见相关的属性,将术语权重建模到情绪分析系统中。在各种数据集上进行的实验表明,我们的方法有效地改进了以前的方法。

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