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Research on Personal Credit Evaluation Based on Mobile Telecommunications Data

机译:基于移动电信数据的个人信用评估研究

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With the rapid development of big data technology, the personal credit evaluation industry has entered a new stage. Among them, the evaluation of personal credit based on mobile telecommunications data is one of the hotspots of current research. However, due to the complexity and diversity of personal credit evaluation variables, in order to reduce the complexity of the model and improve the prediction accuracy of the model, we need to reduce the dimension of the input variables. According to the data provided by a mobile telecommunications operator, this paper divides the data into a training sets and verification sets. We perform correlation analysis on each indicator of the data in the training set, and calculate the corresponding IV value based on the WOE value of the selected index, then binning data with SPSS Modeler. The selected variables were modeled using a logistic regression algorithm. In order to make the regression results more practical, we extract the scoring rules according to the results of logistic regression, convert them into the form of score cards, and finally verify the validity of the model.
机译:随着大数据技术的快速发展,个人信用评估行业已进入新阶段。其中,基于移动电信数据的个人信用评估是当前研究的热点之一。但是,由于个人信用评估变量的复杂性和多样性,为了降低模型的复杂性并提高模型的预测准确性,我们需要减少输入变量的维度。根据移动电信运算符提供的数据,本文将数据划分为培训集和验证集。我们对训练集中的每个指标进行相关分析,并根据所选索引的WOE值计算相应的IV值,然后用SPSS建模器分组数据。使用逻辑回归算法建模所选变量。为了使回归结果更加实用,我们根据逻辑回归结果提取评分规则,将它们转换为记分卡的形式,最后验证模型的有效性。

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