Please use this identifier to cite or link to this item: http://hdl.handle.net/1893/31581
Appears in Collections:Computing Science and Mathematics Conference Papers and Proceedings
Author(s): Adair, Jason
Ochoa, Gabriela
Malan, Katherine M
Title: Local Optima Networks for Continuous Fitness Landscapes
Editor(s): López-Ibáñez, Manuel
Citation: Adair J, Ochoa G & Malan KM (2019) Local Optima Networks for Continuous Fitness Landscapes. In: López-Ibáñez M (ed.) GECCO '19: Proceedings of the Genetic and Evolutionary Computation Conference Companion. GECCO '19 - Genetic and Evolutionary Computation Conference, Prague, Czech Republic, 13.07.2019-17.07.2019. New York: Association for Computing Machinery, pp. 1407-1414. https://doi.org/10.1145/3319619.3326852
Issue Date: 2019
Date Deposited: 19-Aug-2020
Conference Name: GECCO '19 - Genetic and Evolutionary Computation Conference
Conference Dates: 2019-07-13 - 2019-07-17
Conference Location: Prague, Czech Republic
Abstract: Local Optima Networks (LONs) have been proposed as a coarsegrained model of discrete (combinatorial) fitness landscapes, where nodes are local optima and edges are search transitions based on an exploration search operator. This paper presents one of the first complex network analysis of continuous fitness landscapes. We use benchmark functions with well-known global structure, and an existing implementation of a Basin-Hopping algorithm to extract the networks. We also explore the impact of varying the Basin-Hopping perturbation step-size. Our results suggest that the landscape's connectivity pattern (global structure) strongly varies with the perturbation step-size, with extreme values of this parameter being detrimental to search and fragmenting the global structure. Our LON visualisations strikingly illustrate the landscape's global (funnel) structure, indicating that LONs serve as a tool for visualising high-dimensional functions.
Status: AM - Accepted Manuscript
Rights: © ACM, 2019. This is the author's version of the work. It is posted here by permission of ACM for your personal use. Not for redistribution. The definitive version was published in GECCO ’19 Companion, July 13–17, 2019, Prague, Czech Republic. http://doi.acm.org/10.1145/3319619.3326852

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