Econometrics of Insurance with Multidimensional Types
In this paper, we address the identification and estimation of insurance models where insurees have private information about their risk and risk aversion. The model includes random damages and allows for several claims, while insurers choose from a finite number of coverages. We show that the joint...
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Zusammenfassung: | In this paper, we address the identification and estimation of insurance
models where insurees have private information about their risk and risk
aversion. The model includes random damages and allows for several claims,
while insurers choose from a finite number of coverages. We show that the joint
distribution of risk and risk aversion is nonparametrically identified despite
bunching due to multidimensional types and a finite number of coverages. Our
identification strategy exploits the observed number of claims as well as an
exclusion restriction, and a full support assumption. Furthermore, our results
apply to any form of competition. We propose a novel estimation procedure
combining nonparametric estimators and GMM estimation that we illustrate in a
Monte Carlo study. |
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DOI: | 10.48550/arxiv.2410.08416 |