Artikel

Effectively tackling reinsurance problems by using evolutionary and swarm intelligence algorithms

This paper is focused on solving different hard optimization problems that arise in the field of insurance and, more specifically, in reinsurance problems. In this area, the complexity of the models and assumptions considered in the definition of the reinsurance rules and conditions produces hard black-box optimization problems (problems in which the objective function does not have an algebraic expression, but it is the output of a system (usually a computer program)), which must be solved in order to obtain the optimal output of the reinsurance. The application of traditional optimization approaches is not possible in this kind of mathematical problem, so new computational paradigms must be applied to solve these problems. In this paper, we show the performance of two evolutionary and swarm intelligence techniques (evolutionary programming and particle swarm optimization). We provide an analysis in three black-box optimization problems in reinsurance, where the proposed approaches exhibit an excellent behavior, finding the optimal solution within a fraction of the computational cost used by inspection or enumeration methods.

Sprache
Englisch

Erschienen in
Journal: Risks ; ISSN: 2227-9091 ; Volume: 2 ; Year: 2014 ; Issue: 2 ; Pages: 132-145 ; Basel: MDPI

Klassifikation
Wirtschaft
Thema
reinsurance
optimization problems
evolutionary-based algorithms

Ereignis
Geistige Schöpfung
(wer)
Salcedo-Sanz, Sancho
Carro-Calvo, Leo
Claramunt, Mercè
Castañer, Ana
Mármol, Maite
Ereignis
Veröffentlichung
(wer)
MDPI
(wo)
Basel
(wann)
2014

DOI
doi:10.3390/risks2020132
Handle
Letzte Aktualisierung
10.03.2025, 11:42 MEZ

Datenpartner

Dieses Objekt wird bereitgestellt von:
ZBW - Deutsche Zentralbibliothek für Wirtschaftswissenschaften - Leibniz-Informationszentrum Wirtschaft. Bei Fragen zum Objekt wenden Sie sich bitte an den Datenpartner.

Objekttyp

  • Artikel

Beteiligte

  • Salcedo-Sanz, Sancho
  • Carro-Calvo, Leo
  • Claramunt, Mercè
  • Castañer, Ana
  • Mármol, Maite
  • MDPI

Entstanden

  • 2014

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