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Enhancing cooperative coevolution with surrogate-assisted local search

Chapter
Publication Date:
2016
Short description:
Enhancing cooperative coevolution with surrogate-assisted local search / Trunfio, G.. - 637:(2016), pp. 63-90. [10.1007/978-3-319-30235-5_4]
abstract:
In recent years, an increasing effort has been devoted to the study of metaheuristics suitable for large-scale global optimization in the continuous domain. However, so far the optimization of high-dimensional functions that are also computationally expensive has attracted little research. To address such an issue, this chapter describes an approach in which fitness surrogates are exploited to enhance local search (LS) within the low-dimensional subcomponents of a cooperative coevolutionary (CC) optimizer. The chapter also includes a detailed discussion of the related literature and presents a preliminary experimentation based on typical benchmark functions. According to the results, the surrogate-assisted LS within subcomponents can significantly enhance the optimization ability of a CC algorithm.
Iris type:
2.1 Contributo in volume (Capitolo o Saggio)
Keywords:
Cooperative coevolution; Differential evolution; Evolutionary optimization; Large scale global optimization; Memetic algorithms; Surrogate fitness; Artificial Intelligence
List of contributors:
Trunfio, Giuseppe, Andrea
Authors of the University:
TRUNFIO Giuseppe, Andrea
Handle:
https://iris.uniss.it/handle/11388/162579
Book title:
Nature-Inspired Computation in Engineering
Published in:
STUDIES IN COMPUTATIONAL INTELLIGENCE
Journal
STUDIES IN COMPUTATIONAL INTELLIGENCE
Series
  • Overview

Overview

URL

http://www.springer.com/series/7092
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