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Credit Risk Management of Consumer Finance Based on Big Data

机译:基于大数据的消费者金融信贷风险管理

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In recent years, China’s consumer finance has developed rapidly, but the foundation is unstable, and the industry has serious problems of violent competition, excessive credit, and fraud. Therefore, we should attach great importance to the healthy development of consumer finance, especially the management of its credit risk. The application of big data credit investigation can provide early warning of potential risks and prevent the risk of excessive credit investigation. This paper starts with the definition of basic core concepts, such as traditional credit investigation, big data credit investigation, and consumer finance, analyzes the performance and causes of consumer finance credit risk, and combs in detail the relevant theories of the application of big data credit investigation in consumer finance credit risk management. The application of big data credit investigation has optimized the risk management process of consumer financial institutions, deepened the concept of Internet consumer finance, improved the risk management system, created a diversified credit information system, and strengthened the innovation of Internet consumer finance products and services. For example, credit scores provide the most intuitive quantification of consumer credit risk. For consumers with different levels of credit scores, different credit approval processes can be matched. For customers with high scores, the work process can be simplified without affecting the work results. It can reduce the workload of employees by 20% and increase the accuracy of customer credit risk prediction by 16%.
机译:近年来,中国的消费金融已经迅速发展,但基础是不稳定的,该行业具有严重的暴力竞争,过度信贷和欺诈问题。因此,我们应该非常重视消费者金融的健康发展,特别是对信贷风险的管理。大数据信用调查的应用可以提供潜在风险的早期预警,防止信贷过度调查的风险。本文始于基本核心概念的定义,如传统的信用调查,大数据信用调查和消费者财务,分析了消费者财务信用风险的绩效和原因,并详细介绍了大数据应用的相关理论消费金融信用风险管理中的信用调查。大数据信用调查的应用优化了消费者金融机构的风险管理进程,加深了互联网消费金融的概念,改进了风险管理体系,创造了多元化的信用信息系统,并加强了互联网消费者金融产品和服务的创新。例如,信用评分提供了消费者信用风险最直观的量化。对于具有不同信用评分水平的消费者,可以匹配不同的信用审批流程。对于具有高分的客户,可以简化工作过程,而不会影响工作结果。它可以将员工的工作量减少20%,并提高客户信用风险预测的准确性,增加16%。

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