Item Infomation


Title: 
Multi-objective chaos game optimization
Authors: 
Nima, Khodadadi
Laith, Abualigah
Qasem, Al-Tashi
Issue Date: 
2023
Publisher: 
Springer
Abstract: 
The Chaos Game Optimization (CGO) has only recently gained popularity, but its effective searching capabilities have a lot of potential for addressing single-objective optimization issues. Despite its advantages, this method can only tackle problems formulated with one objective. The multi-objective CGO proposed in this study is utilized to handle the problems with several objectives (MOCGO). In MOCGO, Pareto-optimal solutions are stored in a fixed-sized external archive. In addition, the leader selection functionality needed to carry out multi-objective optimization has been included in CGO. The technique is also applied to eight real-world engineering design challenges with multiple objectives. The MOCGO algorithm uses several mathematical models in chaos theory and fractals inherited from CGO.
Description: 
CC BY
URI: 
https://link.springer.com/article/10.1007/s00521-023-08432-0
https://dlib.phenikaa-uni.edu.vn/handle/PNK/7721
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