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Analisis Komparasi Algoritma Machine Learning untuk Sentiment Analysis (Studi Kasus: Komentar YouTube “Kekerasan Seksual”)

Soemedhy, Chandra Ayunda AptaTrivetisia, NoraWinanti, Nawang AnggitaMartiyaningsih, Dwi PuspaUtami, Tri WulandariSudianto, Sudianto
Jurnal Informatika: Jurnal Pengembangan IT (Sinta 3)Vol. 0 No. 031 Mei 2022
DOI10.30591/jpit.v7i2.3547

Abstrak

Cases of sexual violence in the last decade have been rampant in Indonesia. Cases of sexual violence are increasingly exposed, along with the increasing use of social media. One of them is violence against women. Cases of sexual violence often cause various kinds of stigma in the community, so this study aims to determine the public's response to cases of sexual harassment using sentiment analysis. The data used is sourced from YouTube comments with the title "Kasus Bunuh Diri NW: Bripda Randy Tersangka, Penanganan Polisi Dikritik | Narasi Newsroom." The method used is Machine Learning algorithms such as the SVM algorithm, Naive Bayes, and Random Forest. The results of comparing the three Machine Learning algorithms, Random Forest, obtained the best accuracy rate of 78% compared to the other two algorithms in conducting sentiment analysis on YouTube comments about sexual harassment discussions.

Kata Kunci

Teknik InformatikaAnalisis sentimen, Naive Bayes, pelecehan seksual, Random Forest, SVM

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Analisis Komparasi Algoritma Machine Learning untuk Sentiment Analysis (Studi Kasus: Komentar YouTube “Kekerasan Seksual”) | Jurnal Informatika: Jurnal Pengembangan IT | Publiora