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Sentiment analysis system for movie review in Bahasa Indonesia using naive bayes classifier method

机译:使用Naive Bayes Classifier方法的巴哈萨印度尼西亚的电影审查情绪分析系统

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There are many ways of implementing the use of sentiments often found in documents; one of which is the sentiments found on the product or service reviews. It is so important to be able to process and extract textual data from the documents. Therefore, we propose a system that is able to classify sentiments from review documents into two classes: positive sentiment and negative sentiment. We use Naive Bayes Classifier method in this document classification system that we build. We choose Movienthusiast, a movie reviews in Bahasa Indonesia website as the source of our review documents. From there, we were able to collect 1201 movie reviews: 783 positive reviews and 418 negative reviews that we use as the dataset for this machine learning classifier. The classifying accuracy yields an average of 88.37% from five times of accuracy measuring attempts using aforementioned dataset.
机译:有很多方法可以在文件中实施经常发现的情绪;其中一个是产品或服务评论中的情绪。能够从文档中处理和提取文本数据非常重要。因此,我们提出了一个能够将情绪从审查文件分为两类:积极情绪和负面情绪。我们在我们构建的本文档分类系统中使用Naive Bayes Classifier方法。我们选择Movienthusiast,这是在Bahasa Indonesia网站的电影评论作为我们的评论文件来源。从那里,我们能够收集1201部电影评论:783次积极评论和418个负面评论,我们用作本机学习分类器的数据集。使用上述数据集的精度测量尝试的五次,分类精度平均产生88.37%。

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