cs.AI updates on arXiv.org 10月10日 12:10
低自由度深度神经网络在P2P借贷风险管理中的应用
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本文提出了一种低自由度深度神经网络模型DeNN和一种高自由度模型DSNN,用于解决P2P借贷中的风险管理问题。实验表明,两种模型均能有效降低投资组合VaR,且DeNN模型在多数场景下优于DSNN。

arXiv:2510.07444v1 Announce Type: cross Abstract: Risk management is a prominent issue in peer-to-peer lending. An investor may naturally reduce his risk exposure by diversifying instead of putting all his money on one loan. In that case, an investor may want to minimize the Value-at-Risk (VaR) or Conditional Value-at-Risk (CVaR) of his loan portfolio. We propose a low degree of freedom deep neural network model, DeNN, as well as a high degree of freedom model, DSNN, to tackle the problem. In particular, our models predict not only the default probability of a loan but also the time when it will default. The experiments demonstrate that both models can significantly reduce the portfolio VaRs at different confidence levels, compared to benchmarks. More interestingly, the low degree of freedom model, DeNN, outperforms DSNN in most scenarios.

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P2P借贷 风险管理 深度神经网络 VaR DeNN
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