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Character String Analysis and Customer Path in Stream Data

机译:字符串分析和流数据中的客户路径

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This purpose of this study is to propose a knowledge-discovery system that can abstract helpful information from character strings representing shopper visits to product sections associated with positive and negative purchasing events by applying character string parsing technologies to stream data describing customer purchasing behavior inside a store. Taking data that traced customers' movements we focus on the number of times customers stop by particular product sections, and by representing those visits in the form of character strings, we propose a way to efficiently handle large stream data. During our experiment, we abstract store-section visiting patterns that characterize customers who purchase a relatively larger volume of items, and are able to show the usefulness of these visiting patterns. In addition, we examine index functions, calculation time, and prediction accuracy, and clarify technological issues warranting further research. In the present study, we demonstrate the feasibility of employing stream data in the marketing field and the usefulness of the employing character parsing techniques.
机译:本研究的这种目的是提出一个知识发现系统,可以通过应用字符串解析技术将描述客户在商店中的数据流数据流分流数据中,从代表购物者访问与正负购买事件相关联的产品部分的人物字符串中的有助于的信息。 。采取数据追溯客户的动作,我们专注于客户通过特定产品部分停止的次数,以及代表字符串形式的访问,我们提出了一种有效处理大型流数据的方法。在我们的实验期间,我们抽象了店面的店铺,这些模式表征了购买相对较大数量的物品的客户,并且能够展示这些访问模式的有用性。此外,我们检查索引函数,计算时间和预测准确性,并阐明需要进一步研究的技术问题。在本研究中,我们展示了在营销领域中使用流数据的可行性以及采用现有性的解析技术的有用性。

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