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Usage Data for Predicting User Trends and Behavioral Analysis in E-Commerce Applications

机译:用于预测电子商务应用中的用户趋势和行为分析的使用数据

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摘要

Reviewing and buying the right goods from online websites is growing day by day in today's fast internet environment. Numerous goods in the same label are available to consumers. It is thus a difficult job for consumers to pick up the correct commodity at a decent price under different market conditions. Therefore, it is important for owners of online shopping websites to better understand their customers' needs and offer better services. For these reasons, the access log documented a vast amount of data related to user interactions with the websites. This access log therefore plays a key role in predicting user access trends and in recommending the best product to consumers. This research work therefore focuses on one such methodology for evaluating the pattern and behavioral analysis of users in e-commerce websites.
机译:从在线网站审查和购买合适的商品正在今天在今天的快速互联网环境中日益增长。 消费者可以获得同一标签中的许多商品。 因此,消费者在不同的市场条件下以不错的价格拿起正确的商品是一项艰巨的工作。 因此,对于在线购物网站的业主来说,重要的是更好地了解客户的需求并提供更好的服务。 由于这些原因,访问日志记录了与用户交互相关的大量数据。 因此,此访问日志在预测用户访问趋势以及将最佳产品推荐给消费者时扮演关键作用。 因此,该研究侧重于评估电子商务网站中用户模式和行为分析的一种这种方法。

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