JOURNAL ARTICLE

Analisis Sentimen Masyarakat terhadap Hasil Quick Count Pemilihan Presiden Indonesia 2019 pada Media Sosial Twitter Menggunakan Metode Naive Bayes Classifier

Lingga Aji AndikaPratiwi Amalia Nur AzizahRespatiwulan Respatiwulan

Year: 2019 Journal:   Indonesian Journal of Applied Statistics Vol: 2 (1)Pages: 34-34   Publisher: Sebelas Maret University

Abstract

<p>Indonesia is one of the countries that adheres to a democratic system. In the course of a democratic system it is marked by periodic general elections. In 2019 Indonesia held a general election simultaneously to elect the President, DPR, DPRD and DPD. After the election, a lot of opinion arise within the community, including on social media twitter. One of the topics discussed was the results of the quick count of the presidential election. Therefore, a method that can be used to analyze sentiment from the quick count opinion is needed, that is naive Bayes method. The aims of this study are to find the best naive Bayes model and to classify sentiments. The result shows the best accuracy of 82.90% with α = 0.05. The classification obtained is 34.5% (471) positive tweets and 65.5% (895) negative tweets on the results of the quick count.</p><p><strong>Keywords :</strong> sentiment analysis, naive Bayes classifier, elections, quick count</p>

Keywords:
Naive Bayes classifier Presidential system Democracy Sentiment analysis Social media Presidential election Political science Classifier (UML) General election Artificial intelligence Computer science Support vector machine Law Politics

Metrics

58
Cited By
7.28
FWCI (Field Weighted Citation Impact)
5
Refs
0.97
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Multimedia Learning Systems
Physical Sciences →  Computer Science →  Information Systems
Data Mining and Machine Learning Applications
Physical Sciences →  Computer Science →  Information Systems
Information Retrieval and Data Mining
Physical Sciences →  Computer Science →  Information Systems

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