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借款人信用评估的新框架:含协变量和宏观经济效应的移动者-停留者模型

A new framework for examining creditworthiness of borrowers: the mover-stayer model with covariate and macroeconomic effects

Quantitative Finance · 2021
被引 2
人大 BABS 3

中文导读

扩展了移动者-停留者模型,加入宏观经济变量,用于分析汽车贷款中按时还款的借款人特征,发现GDP增长显著提高停留者比例,对贷款机构评估信用有价值。

Abstract

We develop a novel extension of the mover-stayer model to allow for time-dependent variables such as macroeconomic factors and apply it to the repayment process for car loans. The MS model postulates a simple form of population heterogeneity, which is particularly well suited to describing the repayment process: a proportion of borrowers always repay on time (stayers), and a complementary proportion evolves according to a discrete-time Markov chain (movers), with an absorbing default state. In contrast to the literatures focus on the determinants of defaults, our extension examines the determinants of creditworthy borrowers (stayers). We model the probability of borrowers being stayers as a logistic function of their time-fixed covariates as well as of macroeconomic variables. The car-loans data set, obtained from a Polish bank, contains a large number of characteristics for each borrower and their repayment histories. The MS models' estimation from these data indicates that annual GDP growth is the only macroeconomic variable exerting a substantial effect on the stayers' probability: as GDP increases, so does the proportion of stayers. Because stayers are the most desirable borrowers, the proposed model should be useful to institutional lenders.

信用风险计量经济学金融学宏观经济学