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Vol. 10 No. 7 (2025): Kohesi: Jurnal Sains dan Teknologi, ISSN 3025-1311

ANALISIS K-MEANS CLUSTERING DALAM MENGELOMPOKKAN PENGGUNA ONLINE GROCERY PLATFORM BERDASARKAN VARIABEL KEAMANAN TRANSAKSI, KEAMANAN DATA, KECEPATAN PENGIRIMAN, KETEPATAN WAKTU PENGIRIMAN, DAN BIAYA PENGIRIMAN

Submitted
December 14, 2025
Published
2025-12-14

Abstract

This study aims to segment users of an Online Grocery Platform based on their perceptions of service quality, particularly regarding transaction security, data security, delivery timeliness, delivery speed, and shipping costs. Using the K-Means clustering method with 50 respondents, the analysis successfully formed three distinct clusters that represent different patterns of customer satisfaction. Cluster 1 consists of users who report very high satisfaction across all service attributes, particularly in transaction security, data protection, and delivery performance. Cluster 2 represents users with moderate and stable evaluations on all variables. Meanwhile, Cluster 3 includes users who express low satisfaction related to security and shipping costs but show relatively positive perceptions of delivery speed and timeliness. The segmentation illustrates that user perceptions toward the Online Grocery Platform are diverse and can be classified into clearly differentiated groups. These findings provide insights for companies in identifying priority segments and designing targeted strategies to improve service performance, especially in enhancing security aspects and optimizing shipping cost structures.

References

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  2. Awaliyah, D. A., Prasetiyo, B., Muzayanah, R., & Lestari, A. D. (2024). Optimizing Customer Segmentation in Online Retail Transactions through the Implementation of the K-Means Clustering Algorithm. Scientific Journal of Informatics, 11(2). https://doi.org/10.15294/sji.v11i2.6137
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