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Sentiment Groups as Features of a Classification Model Using a Spanish Sentiment Lexicon: A Hybrid Approach

机译:情感组作为使用西班牙情感词典的分类模型的特征:一种混合方法

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Discovering people's subjective opinion about a topic of interest has become more relevant with the explosion in the use of social networks, mi-croblogs, forums and e-commerce pages all over the Internet. Sentiment analysis techniques aim to identify polarity of opinions by analyzing explicit and implicit features within the text. This paper presents a hybrid approach to extract features from Spanish sentiment sentences in order to create a model based on support vector machines and determine polarity of opinions. In addition to this, a Spanish Sentiment Lexicon has been constructed. Accuracy of the model is evaluated against two previously tagged corpora and results are discussed.
机译:随着人们对Internet上社交网络,微型croblog,论坛和电子商务页面的使用激增,发现人们对感兴趣主题的主观意见变得越来越重要。情感分析技术旨在通过分析文本中的显式和隐式特征来识别观点的极性。本文提出了一种从西班牙语情绪句子中提取特征的混合方法,以便基于支持向量机创建模型并确定观点的极性。除此之外,还制作了西班牙情感词典。针对两个先前标记的语料库评估模型的准确性,并讨论结果。

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