Cover of Evolutionary Large-Scale Multi-Objective Optimization and Applications

Evolutionary Large-Scale Multi-Objective Optimization and Applications

Xingyi Zhang, Ran Cheng, Ye Tian, Yaochu Jin
Publisher: John Wiley & Sons
Published: 2024
ISBN-13: 9781394178414
ISBN-10: 1394178417
Pages: 352
Subjects: Technology & Engineering / Industrial Engineering, Technology & Engineering / Electronics / General, Technology & Engineering / Electrical
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About Evolutionary Large-Scale Multi-Objective Optimization and Applications

Tackle the most challenging problems in science and engineering with these cutting-edge algorithms Multi-objective optimization problems (MOPs) are those in which more than one objective needs to be optimized simultaneously. As a ubiquitous component of research and engineering projects, these problems are notoriously challenging. In recent years, evolutionary algorithms (EAs) have shown significant promise in their ability to solve MOPs, but challenges remain at the level of large-scale multi-objective optimization problems (LSMOPs), where the number of variables increases and the optimized solution is correspondingly harder to reach. Evolutionary Large-Scale Multi-Objective Optimization and Applications constitutes a systematic overview of EAs and their capacity to tackle LSMOPs. It offers an introduction to both the problem class and the algorithms before delving into some of the cutting-edge algorithms which have been specifically adapted to solving LSMOPs. Deeply engaged with spec...

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