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Investigation and Application of Cluster Analysis in Service Industries

机译:服务业中聚类分析的研究与应用

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Analytical models are critical in service Industries. In every phase of the credit cycle - marketing, acquisitions, customer management, collections, and recovery. While such models are now commonplace, the search for competitive advantage requires continuous improvement in the models. Customization of the models for each segment of the population is a crucial step towards achieving that end. Segments in the population may be defined judgmentally using one or two variables, but cluster analysis is an excellent statistical tool for multivariate segmentation. The clusters may be used to drive the model development process, to assign appropriate strategies, or both. This paper discusses the FASTCLUS procedure as a tool for segmentation of a population. The first phase involves preparing the data for clustering, which includes handling missing values and outliers, standardizing, and reducing the number of variables using tools such as the FACTOR procedure. The FASTCLUS discussion emphasizes the assumptions, the options available, and the interpretation of the SAS output. Finally, the business interpretation of the cluster analysis is provided within the context of this specific industry. This enables the analyst to identify the appropriate number of clusters to use in model development or strategic planning.
机译:分析模型在服务行业中至关重要。在信贷周期的每个阶段-市场营销,获取,客户管理,催收和恢复。尽管这样的模型现在很普遍,但是要寻求竞争优势,就需要对模型进行持续改进。为人群的每个部分定制模型是实现这一目标的关键一步。可以使用一个或两个变量来判断总体中的细分,但是聚类分析是用于多元细分的出色统计工具。集群可用于驱动模型开发过程,分配适当的策略或同时使用两者。本文讨论了FASTCLUS程序作为人口分割的工具。第一阶段涉及准备数据以进行聚类,其中包括使用FACTOR过程之类的工具来处理缺失值和离群值,标准化并减少变量数量。 FASTCLUS的讨论着重于假设,可用选项以及SAS输出的解释。最后,在特定行业的背景下提供了聚类分析的业务解释。这使分析人员能够确定要在模型开发或战略规划中使用的适当数量的集群。

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