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Titlebook: Genetic Programming for Production Scheduling; An Evolutionary Lear Fangfang Zhang,Su Nguyen,Mengjie Zhang Book 2021 The Editor(s) (if appl

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Partnerschap in het UMC St Radboud,exible job shop scheduling. Two strategies are introduced, one is the genetic programming with cooperative coevolution, the other is the genetic programming with multi-tree representation. The results show the advantages and disadvantages of these two strategies over learning two rules simultaneousl
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https://doi.org/10.1007/978-90-368-2580-1uling. How to design multiple surrogate models and how to share knowledge among the built surrogates are introduced. The results show that the proposed algorithm can significantly reduce the training time to learn scheduling heuristics for dynamic scheduling. With the same training time, the propose
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,Loek Winter: ‘Ik maak van zand cement’,ow to measure the relatedness between dynamic scheduling tasks, and how to use the relatedness information to choose assisted task to enhance positive knowledge transfer between tasks. The results show that the proposed task relatedness measure can detect related tasks effectively and sharing knowle
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https://doi.org/10.1007/978-981-16-4859-5Production Scheduling; Machine Learning; Hyper-Heuristic Learning; Genetic Programming; Multitask Optimi
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