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Bank Telemarketing Forecasting Model Based on t-SNE-SVM

机译:基于T-SNE-SVM的银行电话营销预测模型

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摘要

As a low-cost marketing model, telemarketing has always been the most important channel for banks to promote wealth management products. Traditional telemarketing has not only brought intrusiveness to many telephone access customers, but also a waste of resources for the bank itself. In order to improve the success rate of bank telemarketing, it is necessary to predict in advance which customers are most likely to purchase the wealth management product, so as to achieve precision marketing. Aiming at the complex high-dimensional nonlinear characteristics of the factors affecting the success rate of telemarketing, a t-SNE (t-distributed stochastic neighbor embedding) feature extraction method, and then take the extracted low-dimensional features as input, use nonlinear support vector machine (SVM) for training and prediction. The empirical results show that the bank phone based on t-SNE-SVM proposed in this paper. The marketing prediction model has good learning ability and generalization ability, which can provide certain decision-making reference for banks and other industries to achieve precision marketing.
机译:作为低成本的营销模式,电话营销始终是银行推广财富管理产品的最重要渠道。传统的电话营销不仅为许多电话访问客户提供了侵入性,而且为银行本身浪费资源。为了提高银行电话营销的成功率,有必要预测客户最有可能购买财富管理产品的预测,以实现精密营销。针对复杂的高维非线性特征,影响电话营销的成功率,T-SNE(T分布式随机邻居嵌入)特征提取方法,然后采用提取的低维特征作为输入,使用非线性支撑矢量机(SVM)用于训练和预测。经验结果表明,本文提出了基于T-SNE-SVM的银行电话。营销预测模型具有良好的学习能力和泛化能力,可以为银行和其他行业提供某些决策参考,以实现精确营销。

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