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Churn prediction in subscriber management for mobile and wireless communications services

机译:移动和无线通信服务的订户管理中的客户流失预测

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Subscriber churn is a concern of customer care management for most of the mobile and wireless service providers and operators due to its associated costs. This paper explains our work on subscriber churn analysis and prediction for such services. We work on data mining techniques to accurately and efficiently predict subscribers who will change-and-turn (churn) to another provider for the same or similar service. The dataset we use is a public and real dataset compiled by Orange Telecom for the KDD 2009 Competition. Number of teams achieved high scores on this dataset requiring a significant amount of computing resources. We are aiming to find alternative methods that can match or improve the recorded high scores with more efficient and practical use of resources. In this study, we focus on ensemble of meta-classifiers which have been studied individually and chosen according to their performances.
机译:对于大多数移动和无线服务提供商和运营商来说,订户流失是客户服务管理的关注点,因为其相关成本很高。本文介绍了我们在此类服务的用户流失分析和预测方面的工作。我们致力于数据挖掘技术,以准确,高效地预测订户,他们将为相同或相似的服务而改变(转向)另一家提供商。我们使用的数据集是Orange Telecom为KDD 2009竞赛汇编的公共和真实数据集。在此数据集上取得高分的团队数量需要大量的计算资源。我们旨在寻找可以更有效,更实际地利用资源来匹配或改善记录的高分的替代方法。在这项研究中,我们专注于元分类器的集成,这些元分类器已经过单独研究并根据其性能进行选择。

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