EDOLAB: An Open-Source Platform for Education and Experimentation with Evolutionary Dynamic Optimization Algorithms
Many real-world optimization problems exhibit dynamic characteristics, posing significant challenges for traditional optimization techniques. Evolutionary Dynamic Optimization Algorithms (EDOAs) are designed to address these challenges effectively. However, in existing literature, the reported resul...
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Zusammenfassung: | Many real-world optimization problems exhibit dynamic characteristics, posing
significant challenges for traditional optimization techniques. Evolutionary
Dynamic Optimization Algorithms (EDOAs) are designed to address these
challenges effectively. However, in existing literature, the reported results
for a given EDOA can vary significantly. This inconsistency often arises
because the source codes for many EDOAs, which are typically complex, have not
been made publicly available, leading to error-prone re-implementations. To
support researchers in conducting experiments and comparing their algorithms
with various EDOAs, we have developed an open-source MATLAB platform called the
Evolutionary Dynamic Optimization LABoratory (EDOLAB). This platform not only
facilitates research but also includes an educational module designed for
instructional purposes. The education module allows users to observe: a) a
2-dimensional problem space and its morphological changes following each
environmental change, b) the behaviors of individuals over time, and c) how the
EDOA responds to environmental changes and tracks the moving optimum. The
current version of EDOLAB features 25 EDOAs and four fully parametric benchmark
generators. The MATLAB source code for EDOLAB is publicly available and can be
accessed from [https://github.com/Danial-Yazdani/EDOLAB-MATLAB]. |
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DOI: | 10.48550/arxiv.2308.12644 |