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Marked Cox models for IBNR claims count: continuous and discretized approaches with Dirichlet-driven reporting delays

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  • Abdelrahman, Hassan
  • Badescu, Andrei L.
  • Craiu, Radu V.
  • Lin, X. Sheldon

Abstract

We propose a novel micro-level Cox model for incurred but not reported (IBNR) claims count based on hidden Markov models. Initially formulated as a continuous-time model, it addresses the complexity of incorporating temporal dependencies and policyholder risk attributes. However, the continuous-time model faces significant challenges in maximizing the likelihood and fitting right-truncated reporting delays. To overcome these issues, we introduce two discrete-time versions: one incorporating unsystematic randomness in reporting delays through a Dirichlet distribution and one without. We provide the EM algorithm for parameter estimation for all three models and apply them to an auto-insurance dataset to estimate IBNR claim counts. Our results show that while all models perform well, the discrete-time versions demonstrate superior performance by jointly modeling delay and frequency, with the Dirichlet-based model capturing additional variability in reporting delays. This approach enhances the accuracy and reliability of IBNR reserving, offering a flexible framework adaptable to different levels of granularity within an insurance portfolio.

Suggested Citation

  • Abdelrahman, Hassan & Badescu, Andrei L. & Craiu, Radu V. & Lin, X. Sheldon, 2026. "Marked Cox models for IBNR claims count: continuous and discretized approaches with Dirichlet-driven reporting delays," ASTIN Bulletin, Cambridge University Press, vol. 56(1), pages 60-88, January.
  • Handle: RePEc:cup:astinb:v:56:y:2026:i:1:p:60-88_3
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