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首页> 外文期刊>European Journal of Operational Research >Instance-based credit risk assessment for investment decisions in P2P lending
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Instance-based credit risk assessment for investment decisions in P2P lending

机译:基于实例的信用风险评估,用于P2P贷款的投资决策

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摘要

Recent years have witnessed increased attention on peer-to-peer (P2P) lending, which provides an alternative way of financing without the involvement of traditional financial institutions. A key challenge for personal investors in P2P lending marketplaces is the effective allocation of their money across different loans by accurately assessing the credit risk of each loan. Traditional rating-based assessment models cannot meet the needs of individual investors in P2P lending, since they do not provide an explicit mechanism for asset allocation. In this study, we propose a data-driven investment decision-making framework for this emerging market. We designed an instance-based credit risk assessment model, which has the ability of evaluating the return and risk of each individual loan. Moreover, we formulated the investment decision in P2P lending as a portfolio optimization problem with boundary constraints. To validate the proposed model, we performed extensive experiments on real-world datasets from two notable P2P lending marketplaces. Experimental results revealed that the proposed model can effectively improve investment performances compared with existing methods in P2P lending. (C) 2015 Elsevier B.V. and Association of European Operational Research Societies (EURO) within the International Federation of Operational Research Societies (IFORS). All rights reserved.
机译:近年来,人们越来越关注点对点(P2P)贷款,这提供了一种无需传统金融机构参与的替代融资方式。 P2P贷款市场中的个人投资者面临的主要挑战是,通过准确评估每笔贷款的信用风险,如何有效地将资金分配到不同的贷款中。传统的基于评级的评估模型无法满足个人投资者的P2P借贷需求,因为它们没有提供明确的资产分配机制。在这项研究中,我们为这个新兴市场提出了一个数据驱动的投资决策框架。我们设计了基于实例的信用风险评估模型,该模型具有评估每笔贷款的收益和风险的能力。此外,我们将P2P借贷中的投资决策表述为具有边界约束的投资组合优化问题。为了验证所提出的模型,我们对来自两个著名的P2P借贷市场的真实数据集进行了广泛的实验。实验结果表明,与现有的P2P借贷方法相比,该模型可以有效提高投资绩效。 (C)2015年Elsevier B.V.和国际运营研究学会联合会(IFORS)中的欧洲运营研究学会协会(EURO)。版权所有。

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