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Data mining market basket analysis' using hybrid-dimension association rules, case study in Minimarket X

机译:数据挖掘市场篮子分析“利用混合维协会规则,案例研究X

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Market-Basket Analysis is a process to analyze the habits of buyers to find the relationship between different items in their market basket. The discovery of these relationships can help the merchant to develop a sales strategy by considering the items frequently purchased together by customers. In this research, the data mining with market basket analysis method is implemented, where it can analyze the buying habit of the customers. The testing is conducted in Minimarket X. Searching for frequent itemsets performed by Apriori algorithm to get the items that often appear in the database and the pair of items in one transaction. Pair of items that exceed the minimum support will be included into the frequent itemsets are selected. Frequent itemsets that exceed the minimum support will generate association rules after decoding. One frequent itemsets can generate association rules and find the confidence, which is uses a hybrid-dimension association rules. The test results show, the application can generate the information what kind of products are frequently bought in the same time by the customers according to Hybrid-dimension Association Rules criteria. Results from the mining process show a correlation between the data (association rules) including the support and confidence that can be analyzed. This information will give additional consideration for owners of Minimarket X to make the further decision.
机译:市场篮子分析是分析买家习惯的过程,以找到其市场篮子中不同物品之间的关系。这些关系的发现可以通过考虑客户经常购买的物品来帮助商家开发销售策略。在这项研究中,实施了与市场篮分析方法的数据挖掘,可以分析客户的购买习惯。测试是在Minimarket X中进行的。搜索Apriori算法执行的频繁项目集,以获取经常出现在数据库中的项目和一对事务中的一对项目。将包含超过最小支持的物品将包含在频繁的项目中。频繁的项目集超过最低支持将在解码后生成关联规则。一个频繁的项目集可以生成关联规则并找到置信度,它使用混合维度关联规则。测试结果表明,应用程序可以通过混合维度关联规则标准来生成信息经常在客户同时购买的产品。挖掘过程的结果显示数据(关联规则)之间的相关性,包括可以分析的支持和置信度。这些信息将为Minimarket X的业主提供额外的考虑,以进一步决定。

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