KLASIFIKASI SUPPORT VECTOR MACHINE BERBASIS PARTICLE SWARM OPTIMIZATION UNTUK ANALISA SENTIMEN PENGGUNA APLIKASI PEDULILINDUNGI

Astrid Noviriandini, H. Hermanto, Y. Yudhistira
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引用次数: 2

Abstract

Covid-19 is an infectious disease that has spread to Indonesia. Monitoring the spread of Covid-19 in Indonesia is handled by the Ministry of Communication and Information (KOMINFO) by creating the PeduliLindung application which can be found on Google Play. Users will choose applications that have good reviews, but monitoring reviews from the public is not easy, so the author wants to know the analysis of user reviews of the PeduliLindung application based on user comments using the Support Vector Machine algorithm based on Particle Swarm Optimization. The test results with an accuracy value = 93.0% and AUC value = 0.977. For this reason, the application of the PSO-based Support Vector Machine in this research has a higher accuracy so that it can be used to provide solutions to sentiment analysis problems in reviewing comments from the Pedulilindungi application users on google play.
Covid-19是一种已经传播到印度尼西亚的传染病。印度尼西亚通信和信息部通过创建PeduliLindung应用程序来监测Covid-19在印度尼西亚的传播情况,该应用程序可在Google Play上找到。用户会选择评价好的应用,但是监控公众的评价并不容易,所以作者想了解基于用户评论的PeduliLindung应用的用户评论分析,使用基于粒子群优化的支持向量机算法。检测结果准确度值为93.0%,AUC值为0.977。因此,本研究中基于pso的支持向量机的应用具有更高的准确率,可以为google play上Pedulilindungi应用用户评论的情感分析问题提供解决方案。
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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