用频繁模式增长算法确定饮料产品销售中的消费者模式

Tigor Novanda Purba, Diky Firdaus
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引用次数: 0

摘要

烹饪业务现在越来越发展,竞争也越来越激烈,因此需要制定一个营销策略来销售产品。在商业领域,FP Growth算法数据挖掘的实施结果可以帮助商业人士从消费趋势中找到机会,这样烹饪商业人士就可以了解哪些类型的产品目前在社区中的评分最高,这样经理就可以提供菜单推荐,从而提高销售营业额。所需的数据是特定时期的交易数据,通过关联规则对其进行分析以产生产品推荐。该应用程序的设计使用HTML作为制作网站的基本系统,使用PHP作为开发网站的手段,使用SQL作为数据存储和处理的介质。测试过程从登录过程开始,然后确定支持和置信度参数,并确定事务时间段。从结论来看,管理者可以通过增加项目集价值最高的饮料产品中的原材料库存来确定营销策略。然后,商品集价值最低的产品可以在购买商品时提供促销或折扣,以吸引消费者的购买兴趣。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
DETERMINATION FOR CONSUMER PATTERNS IN BEVERAGE PRODUCT SALES USING THE FREQUENT PATTERN GROWTH ALGORITHM
The culinary business is now increasingly developing and competition is increasing, so it requires a strategy to market the products to be sold. In the business sector, the results of the implementation of FP-Growth algorithm data mining can help business people find opportunities from consumption trends so that culinary business people can find out what types of products currently have the highest rating in the community so that managers can provide menu recommendations so they can increase sales turnover. The data required is a certain period of transaction data which is analyzed to produce product recommendations by the association rules. The design of this application uses HTML as the base system used in making websites, PHP as a means to develop websites, and SQL as a medium for data storage and processing. The testing process begins with the login process, then determines the support and confidence parameters, and determines the transaction time period. From the conclusion, managers can determine marketing strategies by increasing the stock of raw materials in beverage products that have the highest itemset value. Then the product with the lowest itemset value can provide promos or discounts on the purchase of goods to attract consumer buying interest.
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