Towards Adaptation in Multiobjective Evolutionary Algorithms for Integer Problems

Parameter control refers to the techniques that dynamically adapt the parameter values of the evolutionary algorithm during the optimization process, such as population size, crossover rate, or operator selection. Adaptation can improve the performance and robustness of the algorithm, however, param...

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Published in:2024 IEEE Congress on Evolutionary Computation (CEC) pp. 1 - 8
Main Authors: Rudolph, Gunter, Wagner, Markus
Format: Conference Proceeding
Language:English
Published: IEEE 30-06-2024
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Abstract Parameter control refers to the techniques that dynamically adapt the parameter values of the evolutionary algorithm during the optimization process, such as population size, crossover rate, or operator selection. Adaptation can improve the performance and robustness of the algorithm, however, parameter control mechanisms themselves need to be designed and configured carefully. With this article, we contribute a systematic investigation of an adaptive, multi-objective algorithm that is designed for the optimisation of problems in unbounded integer decision spaces. We find that (1) adaptation outperforms the best static configurations by 39-82 %, and (2) performance of the multi-objective algorithm is often independent of the adaptation scheme's initial configuration.
AbstractList Parameter control refers to the techniques that dynamically adapt the parameter values of the evolutionary algorithm during the optimization process, such as population size, crossover rate, or operator selection. Adaptation can improve the performance and robustness of the algorithm, however, parameter control mechanisms themselves need to be designed and configured carefully. With this article, we contribute a systematic investigation of an adaptive, multi-objective algorithm that is designed for the optimisation of problems in unbounded integer decision spaces. We find that (1) adaptation outperforms the best static configurations by 39-82 %, and (2) performance of the multi-objective algorithm is often independent of the adaptation scheme's initial configuration.
Author Rudolph, Gunter
Wagner, Markus
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  givenname: Markus
  surname: Wagner
  fullname: Wagner, Markus
  email: markus.wagner@monash.edu
  organization: Monash University,Department of Data Science and AI,Clayton,Australia
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Snippet Parameter control refers to the techniques that dynamically adapt the parameter values of the evolutionary algorithm during the optimization process, such as...
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SubjectTerms Aerospace electronics
Evolutionary computation
Heuristic algorithms
integer search space
multiobjective evolutionary algorithm
Process control
Search problems
self-adaptation
Sociology
step size control
Systematics
Title Towards Adaptation in Multiobjective Evolutionary Algorithms for Integer Problems
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