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Handling Uncertainty in Social Lending Credit Risk Prediction with a Choquet Fuzzy Integral Model

机译:用Choquet模糊积分模型处理社会贷款信用风险预测中的不确定性。

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As one of the main business models in the financial technology field, peer-to-peer (P2P) lending has disrupted traditional financial services by providing an online platform for lending money that has remarkably reduced financial costs. However, the inherent uncertainty in P2P loans can result in huge financial losses for P2P platforms. Therefore, accurate risk prediction is critical to the success of P2P lending platforms. Indeed, even a small improvement in credit risk prediction would be of benefit to P2P lending platforms. This paper proposes an innovative credit risk prediction framework that fuses base classifiers based on a Choquet fuzzy integral. Choquet integral fusion improves creditworthiness evaluations by synthesizing the prediction results of multiple classifiers and finding the largest consistency between outcomes among conflicting and consistent results. The proposed model was validated through experimental analysis on a real-world dataset from a well-known P2P lending marketplace. The empirical results indicate that the combination of multiple classifiers based on fuzzy Choquet integrals outperforms the best base classifiers used in credit risk prediction to date. In addition, the proposed methodology is superior to some conventional combination techniques.
机译:作为金融技术领域的主要商业模式之一,对等(P2P)借贷提供了在线借贷平台,大大降低了融资成本,从而扰乱了传统金融服务。但是,P2P贷款的内在不确定性可能导致P2P平台遭受巨大的财务损失。因此,准确的风险预测对于P2P借贷平台的成功至关重要。确实,即使信用风险预测略有改善,也会对P2P借贷平台有利。本文提出了一种创新的信用风险预测框架,该框架融合了基于Choquet模糊积分的基本分类器。 Choquet积分融合通过综合多个分类器的预测结果并在冲突结果和一致结果之间找到最大的一致性,从而改善了信誉评估。通过对来自知名P2P贷款市场的真实数据集进行实验分析,验证了所提出的模型。实证结果表明,基于模糊Choquet积分的多个分类器的组合优于迄今为止在信用风险预测中使用的最佳基础分类器。另外,所提出的方法优于一些常规的组合技术。

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