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Towards a stronger theory for permutation-based evolutionary algorithms

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Résumé

While the theoretical analysis of evolutionary algorithms (EAs) has made significant progress for pseudo-Boolean optimization problems in the last 25 years, only sporadic theoretical results exist on how EAs solve permutation-based problems. To overcome the lack of permutation-based benchmark problems, we propose a general way to transfer the classic pseudo-Boolean benchmarks into benchmarks defined on sets of permutations. We then conduct a rigorous runtime analysis of the permutation-based (1 +1) EA proposed by Scharnow, Tinnefeld, and Wegener (2004) on the analogues of the LeadingOnes and Jump benchmarks. The latter shows that, different from bit-strings, it is not only the Hamming distance that determines how difficult it is to mutate a permutation s into another one t, but also the precise cycle structure of st- 1. For this reason, we also regard the more symmetric scramble mutation operator. We observe that it not only leads to simpler proofs, but also reduces the runtime on jump functions with odd jump size by a factor of T(n). Finally, we show that a heavy-tailed version of the scramble operator, as in the bit-string case, leads to a speed-up of order mT(m) on jump functions with jump size m.

langue originaleAnglais
titreGECCO 2022 - Proceedings of the 2022 Genetic and Evolutionary Computation Conference
EditeurAssociation for Computing Machinery, Inc
Pages1390-1398
Nombre de pages9
ISBN (Electronique)9781450392372
Les DOIs
étatPublié - 8 juil. 2022
Evénement2022 Genetic and Evolutionary Computation Conference, GECCO 2022 - Virtual, Online, États-Unis
Durée: 9 juil. 202213 juil. 2022

Série de publications

NomGECCO 2022 - Proceedings of the 2022 Genetic and Evolutionary Computation Conference

Une conférence

Une conférence2022 Genetic and Evolutionary Computation Conference, GECCO 2022
Pays/TerritoireÉtats-Unis
La villeVirtual, Online
période9/07/2213/07/22

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