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Original scientific paper

https://doi.org/10.51680/ev.39.1.6

A simulation-based approach to calibrating target fund levels for investor compensation schemes

Petar-Pierre Matek orcid id orcid.org/0000-0003-0152-6920 ; Effectus University of Applied Sciences, Zagreb, Croatia *
Domagoj Poljak orcid id orcid.org/0009-0005-4430-0747 ; Effectus University of Applied Sciences, Zagreb, Croatia
Filip Radeljak ; Effectus University of Applied Sciences, Zagreb, Croatia

* Corresponding author.


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Abstract

Purpose: Investor compensation schemes (ICSs) provide a safety net for retail investors when investment firms fail. However, the optimal level of ex-ante funding remains largely undefined. This paper proposes a quantitative framework to calibrate target fund size, based on operational risk logic.
Methodology: The study applies a Monte Carlo model incorporating firm-level exposure data, supervisory risk classifications (SREP), and stochastic loss distribution (Beta-distributed loss given default). The simulation estimates expected ICS liabilities across 100,000 simulations, capturing low-frequency, high-severity loss patterns.
Results: The model confirms a highly skewed distribution of losses. Based on data from the Croatian market, while most simulations result in no payout, the 99th percentile loss reaches EUR 18.7 million, with a maximum payout exceeding EUR 96 million. The results validate the use of risk-sensitive approaches over fixed-percentage benchmarks and highlight the importance of confidence intervals in reserve planning.
Conclusion: This paper contributes a novel, adaptable methodology to size ICS funds based on probabilistic modelling. It supports regulators in transitioning from static to evidence-based reserve targets. Future refinements could involve dynamic monitoring, enhanced estimation of loss given default, and integration of SREP scores into contribution mechanisms.

Keywords

investor compensation scheme; target fund level; SREP

Hrčak ID:

348469

URI

https://hrcak.srce.hr/348469

Publication date:

28.6.2026.

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