Sistem Rekomendasi Paket Menu Menggunakan Algoritma FP Growth di Teré Café and Bar Seminyak

Authors

  • Hukama’ Nur Romadlon Universitas Pembangunan Nasional Veteran Jawa Timur
  • Eka Dyar Wahyuni Universitas Pembangunan Nasional Veteran Jawa Timur
  • Nur Cahyo Wibowo Universitas Pembangunan Nasional Veteran Jawa Timur

DOI:

https://doi.org/10.55606/jupikom.v4i2.4404

Keywords:

Data Mining; Menu Package; CRISP-DM; FP-Growth; Association Rules

Abstract

The rapid growth of the food and beverage industry encourages business actors to have innovative sales strategies to increase their sales. This thesis focuses on TERÉ café and Bar Seminyak, which has not utilized its sales transaction data optimally. The main purpose of the preparation is to identify customer purchasing patterns and formulate recommendations for food and beverage menu packages that can increase sales. This thesis uses data mining techniques with Association Rules and the FP-Growth algorithm to analyze sales transaction data at TERÉ café and Bar Seminyak based on customer preferences in five different time sessions. The data used is sales data from July 1, 2023 to June 30, 2024 and the framework used is CRISP-DM. The results of the analysis show that there is a strong combination between “Octopus” and “Burger” in the opening session, a strong combination between “Baked Egg” and “Avocado Toast” or “Tere Toast” in the lunch session, and in the next three sessions there is a strong combination between “Bintang (PACKAGE)” and “B2G3 BINTANG”. These results were obtained from the min support parameters of 0.01, confidence of 0.1 and lift of 2.

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Published

2025-05-31

How to Cite

Hukama’ Nur Romadlon, Eka Dyar Wahyuni, & Nur Cahyo Wibowo. (2025). Sistem Rekomendasi Paket Menu Menggunakan Algoritma FP Growth di Teré Café and Bar Seminyak. Jurnal Publikasi Ilmu Komputer Dan Multimedia, 4(2), 195–213. https://doi.org/10.55606/jupikom.v4i2.4404