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Retention analysis based on a logistic regression model: A case study

机译:基于逻辑回归模型的保留率分析:一个案例研究

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Telecommunication data has provided new opportunities for both businesses and academia to analyze subscribers' behavioral patterns. Recently, there have been many changes in this industry, i.e., lessening of market regulations/restrictions in exchange for greater participation. New services, emerging technologies, and competitive offerings are factors causing customers to move to different companies. In this work, we intend to develop a logistic regression model tailored for a telecommunication company in Macau by forecasting potential subscribers intending to leave their current services. To implement such prediction we should assign a probability value to subscribers, based on a relationship between customers' historical data and their future behavioral pattern. Then customers with the highest propensity to leave can receive various marketing offers. To improve the analysis result we have utilized a combination of two datasets. Our experimental results show how such data aggregation can improve the model accuracy.
机译:电信数据为企业和学术界提供了分析订户行为模式的新机会。最近,该行业发生了许多变化,即,减少市场法规/限制以换取更大的参与。新服务,新兴技术和有竞争力的产品是导致客户转向其他公司的因素。在这项工作中,我们打算通过预测有意退出其现有服务的潜在订户,来开发针对澳门一家电信公司量身定制的逻辑回归模型。为了实现这样的预测,我们应该根据客户的历史数据与其未来行为模式之间的关系为订户分配一个概率值。然后,最有可能离开的客户可以收到各种营销优惠。为了提高分析结果,我们利用了两个数据集的组合。我们的实验结果表明,这种数据聚合可以如何提高模型的准确性。

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