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        <dc:title>ANALISIS PERBANDINGAN KINERJA BERT DAN INDOBERT DALAM MENDETEKSI ULASAN PALSU PRODUK E-COMMERCE BERBAHASA INDONESIA</dc:title>
        <dc:creator>Marsha Kamila, NIM.: 22106050035</dc:creator>
        <dc:subject>004 Pemrosesan Data, Ilmu Komputer, Teknik Informatika</dc:subject>
        <dc:description>The rapid growth of e-commerce in Indonesia has increased the use of product&#13;
reviews as an important consideration for consumers before making purchases.&#13;
However, the emergence of fake reviews has become a serious issue because it can&#13;
affect consumer trust and reduce the credibility of e-commerce platforms. This&#13;
study aims to compare the performance of Multilingual BERT and IndoBERT&#13;
models in detecting fake reviews written in Indonesian.&#13;
This research employed an experimental method consisting of data collection,&#13;
labeling, preprocessing, model training, evaluation, and result comparison. The&#13;
dataset was obtained from Kaggle and consisted of 18,242 Indonesian e-commerce&#13;
product reviews. Approximately 10% of the dataset was manually labeled and then&#13;
used in a pseudo-labeling process with the Multinomial Naive Bayes algorithm to&#13;
generate additional training data. Both Multilingual BERT and IndoBERT were&#13;
trained using the same parameters to ensure a fair comparison. Model evaluation&#13;
was conducted using accuracy, precision, recall, F1-score, and confusion matrix&#13;
metrics.&#13;
The results showed that IndoBERT achieved the best performance with an accuracy&#13;
of 87.12%, precision of 85.81%, recall of 83.01%, and F1-score of 84.39%.&#13;
Meanwhile, Multilingual BERT achieved an accuracy of 86.30%, precision of&#13;
83.23%, recall of 84.31%, and F1-score of 83.77%. These findings indicate that&#13;
IndoBERT is more effective in understanding the characteristics of the Indonesian&#13;
language, especially informal e-commerce review texts. This study also&#13;
demonstrates that the pseudo-labeling approach can help increase the amount of&#13;
training data, although the quality of additional labels greatly affects model&#13;
performance. Based on the research findings, IndoBERT is more recommended for&#13;
implementing fake review detection systems on Indonesian e-commerce platforms&#13;
compared to Multilingual BERT.</dc:description>
        <dc:date>2026-06-03</dc:date>
        <dc:type>Thesis</dc:type>
        <dc:type>NonPeerReviewed</dc:type>
        <dc:format>text</dc:format>
        <dc:language>id</dc:language>
        <dc:identifier>https://digilib.uin-suka.ac.id/id/eprint/76862/1/22106050035_BAB-I_IV-atau-V_DAFTAR-PUSTAKA.pdf</dc:identifier>
        <dc:format>text</dc:format>
        <dc:language>id</dc:language>
        <dc:identifier>https://digilib.uin-suka.ac.id/id/eprint/76862/2/22106050035_BAB-II_sampai_SEBELUM-BAB-TERAKHIR.pdf</dc:identifier>
        <dc:identifier>  Marsha Kamila, NIM.: 22106050035  (2026) ANALISIS PERBANDINGAN KINERJA BERT DAN INDOBERT DALAM MENDETEKSI ULASAN PALSU PRODUK E-COMMERCE BERBAHASA INDONESIA.  Skripsi thesis, UIN SUNAN KALIJAGA YOGYAKARTA.   </dc:identifier></oai_dc:dc>
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