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Titlebook: Evolutionary Multi-Criterion Optimization; 12th International C Michael Emmerich,André Deutz,Iryna Yevseyeva Conference proceedings 2023 Th

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d logistics. Many mathematical and heuristic algorithms have been developed for optimizing the FLP. In addition to the transportation cost, there are usually multiple conflicting objectives in realistic applications. It is therefore desirable to design algorithms that approximate a set of Pareto sol
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Legality Versus Efficiency of Reform, works already showed, that Hyper-Heuristics as selectors of crossover operators improve the performance of a single algorithm used on two opposing problem properties. In this paper, we present different selection mechanisms of Hyper-Heuristics, that are able to handle an expanded selection pool to
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William E. Smith,Doras D. Hubertto replace an expensive function. In some acquisition functions, the only requirement for a regression model is the predictions. However, some other acquisition functions also require a regression model to estimate the “uncertainty” of the prediction, instead of merely providing predictions. Unfortu
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Experimental Malignant Hyperthermiations. However, due to stochasticity involved in EMO algorithms, the uniformity in distribution of solutions cannot be guaranteed. Moreover, the follow-up decision-making activities may demand finding more solutions in specific regions on the Pareto-optimal front which may not be well-represented by
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Justin G. Stroh,Kenneth L. Rinehartny real-world applications. Since in surrogate model assisted evolution algorithms (SAEAs), the surrogate models from the community of machine learning are usually designed from continuous problems, and they are not suitable from combinatorial problems. For this reason, we propose a convolution rela
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