Sentiment Classification of Chinese Text Based on Extending Semantic Similar Sentiment Words

Yanying Mao
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Abstract

Aiming at the problem of sparse sentiment features caused by the lack of effective sentiment words in Chinese text sentiment classification, a high-precision network comment sentiment classification method is proposed to expand semantic similarity sentiment features. Experiments based on takeout and computer review corpus show that the accuracy of sentiment classification is high and the classification effect is good. Automatic sentiment analysis technology was used to mine the sentiment tendencies contained in a large number of comment texts. It can understand the opinions of the public view on an event or product, and provide decision support for making marketing strategies and selecting commodity brands. The method has important commercial
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基于语义相似情感词扩展的汉语文本情感分类
针对中文文本情感分类中缺乏有效情感词导致情感特征稀疏的问题,提出了一种扩展语义相似度情感特征的高精度网络评论情感分类方法。基于外卖和计算机评论语料库的实验表明,该方法的情感分类准确率高,分类效果好。采用自动情感分析技术挖掘大量评论文本中包含的情感倾向。它可以了解公众对事件或产品的看法,为制定营销策略和选择商品品牌提供决策支持。该方法具有重要的商业价值
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