Implementasi Machine Learning Pada Sistem Pendeteksi URL Bermuatan Konten Negatif Menggunakan Metode Algoritma Naive Bayes Dan Support Vector Machine

Authors

  • Rada Rasi Saputri Universitas Pamulang
  • Agus Heri Yunial Universitas Pamulang

Keywords:

Machine Learning, Classification, Negative Content

Abstract

Systems for filtering sites that contain negative content have been carried out by many previous researchers. However, these systems focus more on only 1 type of negative content and are mostly built for sites that are in English. The system that can filter URLs using Indonesian only focuses on negative content. This study aims to create a URL detection system that contains negative content using a Machine Learning model. The system in this study filters content on URLs that use Indonesian. This study uses 2 main models, namely Naïve Bayes, Support Vector Machine. Of all the models used, the SVM model produces the highest accuracy of 96.161%.

References

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Kusuma, S. D. Y., Al Islami, H., Wicaksono, B. S., Nurlaila, F., & Apriyanto, B. (2020). Pelatihan Web Desain dan Help Desk Bagi Siswa Prodi Teknik Komputer Jaringan (TKJ) Pada SMK YPUI Parung. JAMAIKA: Jurnal Abdi Masyarakat, 1(1), 101-114.

Husain, T., & Ardhiansyah, M. (2020). Pair-Samples T Test: Simulation Model of Financial Ratio's Measurement with Decision Support Systems (DSS) Approach. International Journal of Advanced Trends in Engineering, Science and Technology (IJATEST), 5(4), 13-17.

Zailani, A. U., Perdananto, A., Nurjaya, N., & Sholihin, S. (2020). Pengenalan Sejak Dini Siswa SMP tentang Machine Learning untuk Klasifikasi Gambar dalam Menghadapi Revolusi 4.0. KOMMAS: Jurnal Pengabdian Kepada Masyarakat, 1(1).

Additional Files

Published

05-11-2023

How to Cite

Rada Rasi Saputri, & Agus Heri Yunial. (2023). Implementasi Machine Learning Pada Sistem Pendeteksi URL Bermuatan Konten Negatif Menggunakan Metode Algoritma Naive Bayes Dan Support Vector Machine . OKTAL : Jurnal Ilmu Komputer Dan Sains, 2(11), 3057–3062. Retrieved from https://journal.mediapublikasi.id/index.php/oktal/article/view/1896