Sentiment Analysis of Peduli Lindungi Application Using the Naive Bayes Method

Z. Rais, Ferigo Taufani Tri Hakiki, R. Aprianti
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引用次数: 4

Abstract

Peduli Lindung application as a form of government policy in the context of handling Covid-19. The level of usability in an application is really needed to see the usefulness of the application itself. The analysis is carried out in the form of a fine-grained sentiment analysis based on a five-star review. Models used in conducting the analysis in this study using Naïve Bayes. Data used in get it through Google Play Store until April 2022. Rating 1 has the most number from other ratings, namely as many as 467 reviews and rating 4 has the lowest number, namely 55 reviews. The data is classified as negative as many as 146 data, a lot of data are classified as negative classified as true positive as many as 30 data, and data classified as neutral as many as 30 data, with classification accuracy still at 73%. The results obtained by the community tend to show words that refer to the problems that exist in the application.
基于朴素贝叶斯方法的Peduli Lindungi情感分析
在应对新冠肺炎的背景下,将Peduli lindong申请作为政府政策的一种形式。应用程序的可用性级别是真正需要看到应用程序本身的有用性的。分析以基于五星评价的细粒度情感分析的形式进行。本研究使用Naïve贝叶斯模型进行分析。在2022年4月之前通过谷歌Play商店获得的数据。评分1的评论数最多,达到467条,评分4的评论数最少,只有55条。将数据分类为负的数据多达146条,将大量数据分类为负的数据多达30条,将数据分类为真正的数据多达30条,将数据分类为中性的数据多达30条,分类准确率仍在73%。社区获得的结果往往显示了应用程序中存在的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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