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革新市场监管:利用机器学习进行客户关系管理。

Revolutionizing market surveillance: customer relationship management with machine learning.

作者信息

Shi Xiangting, Zhang Yakang, Yu Manning, Zhang Lihao

机构信息

Industrial Engineering and Operations Research Department, Columbia University, New York, United States.

Department of Statistics, Columbia University, Amsterdam Avenue New York, New York, United States.

出版信息

PeerJ Comput Sci. 2024 Dec 18;10:e2583. doi: 10.7717/peerj-cs.2583. eCollection 2024.

Abstract

In the telecommunications industry, predicting customer churn is essential for retaining clients and sustaining profitability. Traditional CRM systems often fall short due to their static models, limiting responsiveness to evolving customer behaviors. To address these gaps, we developed the SmartSurveil CRM model, an ensemble-based system combining random forest, gradient boosting, and support vector machine to enhance churn prediction accuracy and adaptability. Using a comprehensive telecom dataset, our model achieved high performance metrics, including an accuracy of 0.89 and ROC-AUC of 0.91, surpassing baseline approaches. Integrated into a decision support system (DSS), SmartSurveil provides actionable insights to improve customer retention, enabling telecom companies to tailor strategies dynamically. Additionally, this model addresses ethical concerns, including data privacy and algorithmic transparency, ensuring a robust and responsible CRM approach. The SmartSurveil CRM model represents a substantial advancement in predictive accuracy and practical applicability within CRM systems.

摘要

在电信行业,预测客户流失对于留住客户和维持盈利能力至关重要。传统的客户关系管理(CRM)系统往往因静态模型而有所不足,限制了对不断变化的客户行为的响应能力。为了弥补这些差距,我们开发了SmartSurveil CRM模型,这是一个基于集成的系统,结合了随机森林、梯度提升和支持向量机,以提高客户流失预测的准确性和适应性。使用一个全面的电信数据集,我们的模型取得了高性能指标,包括0.89的准确率和0.91的ROC-AUC,超过了基线方法。SmartSurveil集成到决策支持系统(DSS)中,提供可操作的见解以改善客户保留率,使电信公司能够动态调整策略。此外,该模型解决了包括数据隐私和算法透明度在内的伦理问题,确保了一种稳健且负责的CRM方法。SmartSurveil CRM模型代表了CRM系统在预测准确性和实际适用性方面的重大进步。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/50bb/11784820/beed49ad0730/peerj-cs-10-2583-g002.jpg

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