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Titlebook: Learning and Intelligent Optimization; 5th International Co Carlos A. Coello Coello Conference proceedings 2011 Springer-Verlag GmbH Berlin

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Robust Gaussian Process-Based Global Optimization Using a Fully Bayesian Expected Improvement Critere evaluated a limited number of times. This article focuses on the Bayesian approach to this problem, which consists in combining evaluation results and prior information about . in order to efficiently select new evaluation points, as long as the budget for evaluations is not exhausted..The algorit
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Solving Extremely Difficult MINLP Problems Using Adaptive Resolution Micro-GA with Tabu Searchh discrete and continuous variables with several active non-linear equality and inequality constraints. In this paper, a new approach for solving MINLPs is presented using adaptive resolution based micro genetic algorithms with local search. Niching is incorporated in the algorithm by using a techni
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On the Neutrality of Flowshop Scheduling Fitness Landscapesem to solve. In this paper, the permutation flowshop problem is studied. It is well known that in such problems, several solutions may have the same fitness value. As this neutrality property is an important issue, it should be taken into account during the design of search methods. Then, in the con
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A Reinforcement Learning Approach for the Flexible Job Shop Scheduling Problem hierarchical approaches and combines learning and optimization in order to achieve better results. Several problem instances were used to test the algorithm and to compare the results with those reported by previous approaches.
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