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The Analysis of Consumption Behavior Pattern Cluster that Reflects Both On-Offline by Region

机译:区域内线下均反映的消费行为模式聚类分析

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It is necessary to consider regional differences in consumption analysis as the consumption is highly influenced by local characteristics. Thus, this paper proposes a cluster analysis considering the local characteristics by collecting data about consumer behavior that occurs in the online and offline consumer behavior patterns. By collecting the SNS data, the consumption environment of each region is grasped, and the card payment data is collected to extract the consumption behavior pattern of the user through the sequential pattern mining. Based on this, we compute each consumption value in online and offline, and combine them. In this case, the influences from online are different according to the number of users' SNS access. Finally, the analysis proceeds by going to a weight placed K-means clustering according to calculate the calculated value to the user area consumption. Through the proposed method in this paper, it was confirmed that the proposed method can be applied to future recommendation services.
机译:消费分析中必须考虑区域差异,因为消费受当地特征的影响很大。因此,本文通过收集有关在线和离线消费者行为模式中发生的消费者行为的数据,提出了一种考虑本地特征的聚类分析。通过收集SNS数据,掌握每个区域的消费环境,并通过顺序模式挖掘,收集卡支付数据以提取用户的消费行为模式。基于此,我们计算在线和离线的每个消费值,并将其合并。在这种情况下,根据用户的SNS访问次数,来自在线的影响会有所不同。最后,根据权重放置的K均值聚类进行分析,以计算出用户区域消耗量的计算值。通过本文提出的方法,证实了该方法可以应用于未来的推荐服务。

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