1Department of Informatics Magister, Universitas Islam Negeri Sunan Kalijaga Yogyakarta. Jl Marsda Adisucipto No 1 Depok Sleman Yogyakarta 55281, Indonesia
2Department of Biology, Universitas Islam Negeri Sunan Kalijaga, Indonesia
3Department of Informatics Magister UIN Sunan Kalijaga Yogyakarta, Indonesia
BibTex Citation Data :
@article{JTSISKOM14450, author = {Shofwatul Uyun and Eka Sulistyowati and Dony Fahrudy}, title = {Prapemrosesan pada Klasifikasi Status Mutu Air Sungai Menggunakan Random Oversampling dan Outlier Remover Clustering}, journal = {Jurnal Teknologi dan Sistem Komputer}, volume = {10}, number = {4}, year = {2024}, keywords = {klasifikasi; prapemrosesan; RoS; OCR; mutu air.}, abstract = { Ketidakseimbangan jumlah data pada setiap kelasnya serta adanya data outlier seringkali menjadi masalah dalam proses klasifikasi, hal tersebut tentu akan mempengaruhi performa kinerja pembelajaran mesin yang menurun. Oleh karena itu pada penelitian ini diusulkan penggunaan teknik Random Oversampling (ROs) untuk mengatasi ketidakseimbangan data serta teknik Outlier Removal Clustering (ORC) untuk mengatasi data outlier pada penentuan status mutu air . Kedua teknik tersebut digunakan pada tahapan prape mrosesan . Penelitian ini terdiri dari beberapa tahapan, yaitu penentuan kelas status mutu air menggunakan teknik indeks pencemaran, pra pemrosesan, pembagian data, klasifikasi serta evaluasi kinerja. Ada tiga algoritma klasifikasi yang digunakan sebagai perbandingan, yaitu KNN, CART dan r andom f orest. Berdasarkan hasil penelitian menunjukkan peningkatan rerata akurasi dari penggunaan ketiga algoritma klasifikasi tersebut dengan tanpa dilakukan prape mrosesan , penggunaan ROs serta integrasi ROs dan ORC secara berurutan sebagai berikut 83,81%; 94,87% dan 95,51%. Jadi penggunaan teknik Ros dan ORC terbukti meningkatkan performa kinerja pada machine learning. }, issn = {2338-0403}, doi = {10.14710/jtsiskom.2022.14450}, url = {https://jtsiskom.undip.ac.id/article/view/14450} }
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