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Genetic Algorithms-based Techniques for Solving Dynamic Optimization Problems with Unknown Active Variables and Boundaries

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Abstract

In this paper, we consider a class of dynamic optimization problems in which the number of active variables and their boundaries vary as time passes (DOPUAVBs). We assume that such changes in different time periods are not known to decision makers due to certain internal and external factors. Here,

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DOI
10.4108/eai.27-2-2017.152266
OpenAlex
W4236067921
Document type
conference-paper
Language
EN
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