Please use this identifier to cite or link to this item: https://repositori.uma.ac.id/handle/123456789/27336
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dc.contributor.advisorLubis, Andre Hasudungan-
dc.contributor.authorSiregar, Erlina-
dc.date.accessioned2025-05-23T07:22:16Z-
dc.date.available2025-05-23T07:22:16Z-
dc.date.issued2025-
dc.identifier.urihttps://repositori.uma.ac.id/handle/123456789/27336-
dc.description12 Halamanen_US
dc.description.abstractPenelitian ini bertujuan untuk menganalisis sentimen komentar pengunjung terhadap objek wisata Tjong A Fie Mansion di Kota Medan dengan menggunakan metode Naïve Bayes Classifier. Data diperoleh secara manual dari Google Maps sebanyak 100 komentar, yang kemudian melalui tahapan preprocessing meliputi case folding, tokenisasi, penghapusan stopword, dan stemming. Selanjutnya, dilakukan ekstraksi fitur menggunakan metode TF-IDF serta proses klasifikasi menggunakan algoritma Multinomial Naïve Bayes. Evaluasi kinerja model dilakukan dengan menggunakan confusion matrix. Hasil pengujian menunjukkan bahwa pembagian data pelatihan sebesar 80% dan data pengujian sebesar 20% menghasilkan akurasi tertinggi, yaitu sebesar 80% serta hasil sentimen 100% positif. Temuan ini menunjukkan bahwa metode Naïve Bayes mampu mengklasifikasikan komentar berbasis teks secara efektif dan efisien. Hasil analisis sentimen ini diharapkan dapat memberikan masukan bagi pengelola objek wisata dalam meningkatkan kualitas pelayanan, serta menjadi referensi dalam pengembangan sistem pendukung keputusan berbasis opini pengguna. This study aims to analyze the sentiment of visitor comments on the Tjong A Fie Mansion tourist attraction in Medan City using the Naïve Bayes Classifier method. A total of 100 comments were manually collected from Google Maps and underwent preprocessing stages, including case folding, tokenization, stopword removal, and stemming. Feature extraction was then performed using the TF-IDF method, followed by classification using the Multinomial Naïve Bayes algorithm. Model performance was evaluated using a confusion matrix. The test results showed that a data split of 80% for training and 20% for testing yielded the highest accuracy, reaching 80%, with a sentiment classification result of 100% positive. These findings indicate that the Naïve Bayes method can effectively and efficiently classify text-based comments. The sentiment analysis results are expected to provide input for tourism managers to improve service quality and serve as a reference for the development of user opinion-based decision support systems.en_US
dc.language.isoiden_US
dc.publisherUniversitas Medan Areaen_US
dc.relation.ispartofseriesNPM;188160066-
dc.subjectsentiment analysisen_US
dc.subjectNaïve Bayes Classifieren_US
dc.subjecttourist attractionen_US
dc.subjectTF-IDFen_US
dc.subjecttext classificationen_US
dc.subjectklasifikasi teksen_US
dc.subjectanalisis sentimenen_US
dc.titleAnalisis Sentimen Komentar Pengunjung Terhadap Tempat Wisata Tjong A Fie Mansion Menggunakan Metode Naïve Bayes Classifieren_US
dc.title.alternativeSentiment Analysis of Visitor Comments on Tjong A Fie Mansion Tourist Attraction Using the Naïve Bayes Classifier Methoden_US
dc.typeThesisen_US
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