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Application Of K-Nearest Neighbor Algoritma for Customer Review Sentiment Analysis at Ngeboel Vapestore Shop

Muhammad Aryanda et al · LPPM Universitas Bhinneka Nusantara · 2025

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This study applies the K-Nearest Neighbor (K-NN) algorithm to classify customer sentiments from online reviews about Ngeboel Vapestore, a local MSME in the vape industry. A total of 175 reviews from Google Review and Instagram were processed using standard NLP techniques and TF-IDF for feature extraction. The best K-NN model (k=3) achieved 85.4% accuracy. Although Logistic Regression achieved higher accuracy (92.6%), it failed to detect negative sentiment. The findings highlight the potential and limitations of K-NN for sentiment analysis in underexplored MSME contexts like vape retail. The study recommends further model improvements and broader MSME applications.

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APA 7

al, M. A. E. (2025). Application Of K-Nearest Neighbor Algoritma for Customer Review Sentiment Analysis at Ngeboel Vapestore Shop. https://doi.org/10.32664/j-intech.v13i01.1893

MLA

al, Muhammad Aryanda et. "Application Of K-Nearest Neighbor Algoritma for Customer Review Sentiment Analysis at Ngeboel Vapestore Shop." 2025. https://doi.org/10.32664/j-intech.v13i01.1893.

Chicago

al, Muhammad Aryanda et. 2025. "Application Of K-Nearest Neighbor Algoritma for Customer Review Sentiment Analysis at Ngeboel Vapestore Shop.". https://doi.org/10.32664/j-intech.v13i01.1893.

Harvard

al, M. A. E. 2025, Application Of K-Nearest Neighbor Algoritma for Customer Review Sentiment Analysis at Ngeboel Vapestore Shop, LPPM Universitas Bhinneka Nusantara, available at: https://doi.org/10.32664/j-intech.v13i01.1893 [Accessed 5 Aug. 2026].

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Title
Application Of K-Nearest Neighbor Algoritma for Customer Review Sentiment Analysis at Ngeboel Vapestore Shop
Author / contributors
Muhammad Aryanda et al
Publisher
LPPM Universitas Bhinneka Nusantara
Publication year
2025
ISSN
2303-1425
ISSN
2303-1425
Language
English

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