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Artificial Immune System-Based Customer Data Clustering in an e-Shopping Application

机译:电子购物应用中基于人工免疫系统的客户数据聚类

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We address the problem of adaptivity of the interaction between an e-shopping application and its users. Our approach is novel, as it is based on the construction of an Artificial Immune Network (AIN) in which a mutation process is incorporated and applied to the customer profile feature vectors. We find that the AIN-based algorithm yields clustering results of users' interests that are qualitatively and quantitatively better than the results achieved by using other more conventional clustering algorithms. This is demonstrated on user data that we collected using Vision. Com, an electronic video store application that we have developed as a test-bed for research purposes.
机译:我们解决了电子购物应用程序与其用户之间交互的适应性问题。我们的方法是新颖的,因为它基于人工免疫网络(AIN)的构建,其中整合了突变过程并将其应用于客户资料特征向量。我们发现,基于AIN的算法所产生的用户兴趣的聚类结果在质量和数量上均优于使用其他更常规的聚类算法所获得的结果。我们使用Vision收集的用户数据对此进行了证明。 Com,一个电子视频商店应用程序,我们已将其开发为测试平台,用于研究目的。

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