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Main Authors: Xu, Maochao, Sun, Hong, Zhao, Peng
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2407.18377
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author Xu, Maochao
Sun, Hong
Zhao, Peng
author_facet Xu, Maochao
Sun, Hong
Zhao, Peng
contents The reporting delay in data breach incidents poses a formidable challenge for Incurred But Not Reported (IBNR) studies, complicating reserve estimation for actuarial professionals. This work presents a novel Bayesian nowcasting model designed to accurately model and predict the number of IBNR data breach incidents. Leveraging a Bayesian modeling framework, the model integrates time and heterogeneous effects to enhance predictive accuracy. Synthetic and empirical studies demonstrate the superior performance of the proposed model, highlighting its efficacy in addressing the complexities of IBNR estimation. Furthermore, we examine reserve estimation for IBNR incidents using the proposed model, shedding light on its implications for actuarial practice.
format Preprint
id arxiv_https___arxiv_org_abs_2407_18377
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Bayesian Nowcasting Data Breach IBNR Incidents
Xu, Maochao
Sun, Hong
Zhao, Peng
Applications
The reporting delay in data breach incidents poses a formidable challenge for Incurred But Not Reported (IBNR) studies, complicating reserve estimation for actuarial professionals. This work presents a novel Bayesian nowcasting model designed to accurately model and predict the number of IBNR data breach incidents. Leveraging a Bayesian modeling framework, the model integrates time and heterogeneous effects to enhance predictive accuracy. Synthetic and empirical studies demonstrate the superior performance of the proposed model, highlighting its efficacy in addressing the complexities of IBNR estimation. Furthermore, we examine reserve estimation for IBNR incidents using the proposed model, shedding light on its implications for actuarial practice.
title Bayesian Nowcasting Data Breach IBNR Incidents
topic Applications
url https://arxiv.org/abs/2407.18377