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Titlebook: Applications of Evolutionary Computation; 23rd European Confer Pedro A. Castillo,Juan Luis Jiménez Laredo,Francis Conference proceedings 20

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Evolving-Controllers Versus Learning-Controllers for Morphologically Evolvable Robotsshow that the learning approach does not only lead to different fitness levels, but also to different (bigger) robots. This constitutes a quantitative demonstration that changes in brains, i.e., controllers, can induce changes in the bodies, i.e., morphologies.
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Simulation-Driven Multi-objective Evolution for Traffic Light Optimization-objective fashion to obtain a number of Pareto-optimal light configurations. Our experiments, conducted on two city scenarios in Italy and different combinations of fitness functions, demonstrate the validity of this approach and show how evolutionary optimization is an effective tool for traffic light optimization.
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Automatic Rule Extraction from Access Rules Using Genetic Programming dataset coverage and small ratios of false positives and negatives in the simulation results over real data, after testing different fitness functions and configurations in the way of coding the individuals.
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William H. Casey,C. André Ohlin dataset coverage and small ratios of false positives and negatives in the simulation results over real data, after testing different fitness functions and configurations in the way of coding the individuals.
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A Local Search for Numerical Optimisation Based on Covariance Matrix Diagonalisationtors. In its original definition Pattern Search moves along the directions of each variable. Amongst its advantages, the algorithm does not require any knowledge of derivatives or analytical expression of the function to optimise. However, the performance of Pattern Search is heavily problem depende
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Optimizing the Hyperparameters of a Mixed Integer Linear Programming Solver to Speed up Electric Vehhe optimization can represent an issue for the practical use. However, by tuning the parameter setting of the employed solver, it is possible to speed up the optimization process. The present work evaluates two popular hyperparameter tuning tools – irace (iterated racing) and SMAC (sequential model-
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