Analisa Data Penjulan pada Toko Kelontong Musyawarah Menggunakan Algoritma Apriori

Kirana Anastasya Afika Putri Hilman Hilman
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Abstract

Musyawarah store is a grocery store that provides a variety of daily needs. The products sold at the deliberative shop include necessities, kitchen spices, toiletries, laundry soap, and house cleaners. So far, sales data has never been analyzed. Data analysis with data mining can generate new knowledge to help shop owners manage inventory strategies and display items for sale. This study aimed to determine the pattern of the high frequency of items sold in the Musyawarah grocery store using data mining methods. The Apriori algorithm analyzes sales transactions at the Musyawarah grocery store. Based on the observations and calculations that the authors have made of the final association results, namely, if you buy eggs, you will buy Indomie rebus with 50% support and 58% confidence, and if you buy Indomie rebus, you will buy eggs with 50% support and 100% confidence. While sasa is the product that does not sell well with the smallest confidence value.
使用杏算法分析穆萨瓦拉的杂货店批发数据
Musyawarah商店是一家提供各种日常必需品的杂货店。该商店出售的商品包括生活必需品、厨房用香料、洗漱用品、洗衣皂、家用清洁剂等。到目前为止,销售数据从未被分析过。使用数据挖掘的数据分析可以产生新的知识,帮助店主管理库存策略和展示待售商品。本研究旨在利用数据挖掘方法确定Musyawarah杂货店销售的高频率商品的模式。Apriori算法分析了Musyawarah杂货店的销售交易。根据作者对最终关联结果的观察和计算,即如果你买鸡蛋,你会以50%的支持度和58%的置信度买Indomie rebus,如果你买Indomie rebus,你会以50%的支持度和100%的置信度买鸡蛋。而sasa则是信心值最小的产品,卖得不好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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