arXiv:2411.00563cs.MAcs.AI2024-11中稿 · the 5th ACM Intern…

用模拟+优化双层模型设计更抗风险的房贷援助产品

Simulate and Optimise: A two-layer mortgage simulator for designing novel mortgage assistance products

  • 构建双层仿真系统,模拟家庭房贷决策行为
  • 可设计新型援助产品,提升家庭抗收入冲击能力
  • 无需真实试点,低成本验证金融产品有效性

我们提出一种新颖的两层方法,通过模拟多主体房贷环境来优化房贷救济产品。该方法具有通用性,此处基于公开的人口普查数据和监管指南对美国房贷市场进行校准。仿真层评估家庭在外部收入冲击下的韧性,优化层则探索通过提供新型房贷援助产品来增强家庭应对冲击的能力。仿真中的家庭具备适应性,能学习做出最大化效用的房贷决策(如产品参与或战略性止赎),平衡流动性与资产净值。结果表明,该两层仿真方法可有效设计新型房贷援助产品,提升家庭抗冲击能力,并通过事后分析平衡援助成本。此前此类分析需依赖昂贵的真实参与者试点研究,本方法显著降低了产品设计与评估成本。

原文摘要 · Abstract (English)

We develop a novel two-layer approach for optimising mortgage relief products through a simulated multi-agent mortgage environment. While the approach is generic, here the environment is calibrated to the US mortgage market based on publicly available census data and regulatory guidelines. Through the simulation layer, we assess the resilience of households to exogenous income shocks, while the optimisation layer explores strategies to improve the robustness of households to these shocks by making novel mortgage assistance products available to households. Households in the simulation are adaptive, learning to make mortgage-related decisions (such as product enrolment or strategic foreclosures) that maximize their utility, balancing their available liquidity and equity. We show how this novel two-layer simulation approach can successfully design novel mortgage assistance products to improve household resilience to exogenous shocks, and balance the costs of providing such products through post-hoc analysis. Previously, such analysis could only be conducted through expensive pilot studies involving real participants, demonstrating the benefit of the approach for designing and evaluating financial products.

房贷优化仿真建模金融产品

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