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GTI at SemEval-2016 Task 4: Training a Naive Bayes Classifier using Features of an Unsupervised System

机译:GTI在Semeval-2016任务4:使用无监督系统的功能培训一个天真的贝叶斯分类器

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This paper presents the approach of the GTI Research Group to SemEval-2016 task 4 on Sentiment Analysis in Twitter, or more specifically, subtasks A (Message Polarity Classification), B (Tweet classification according to a two-point scale) and D (Tweet quantification according to a two-point scale). We followed a supervised approach based on the extraction of features by a dependency parsing-based approach using a sentiment lexicon and Natural Language Processing techniques.
机译:本文介绍了GTI研究组到Semeval-2016任务4对Twitter情绪分析的方法,或者更具体地,子任务A(消息极性分类),B(根据两点刻度的推文分类)和D(推文量化根据两点刻度)。我们采用依赖于基于解析的方法利用情绪词典和自然语言处理技术的依赖性解析方法进行了监督方法。

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