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A methodology to train and improve artificial neural networks' weights and connections

机译:训练和改善人工神经网络权重和联系的方法

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This work presents a new methodology that integrates the heuristics tabu search, simulated annealing, genetic algorithms and backpropagation in a prunning and constructive way. The approach obtained promising results in the simultaneous optimization of artificial neural network architecture and weights. The experiments were performed in four classification and one prediction problem.
机译:这项工作提出了一种新方法,该方法以启发性和建设性的方式集成了启发式禁忌搜索,模拟退火,遗传算法和反向传播。该方法在同时优化人工神经网络架构和权重方面获得了可喜的结果。实验按四种分类和一种预测问题进行。

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