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Training System for Artificial Neural Networks Having a Global Weight Constrainer

机译:具有全局体重限制器的人工神经网络训练系统

摘要

An architecture for training the weights of artificial neural networks provides a global constrainer modifying the neuron weights in each iteration not only by the back-propagated error but also by a global constraint constraining these weights based on the value of all weights at that iteration. The ability to accommodate a global constraint is made practical by using a constrained gradient descent which approximates the error gradient deduced in the training as a plane, offsetting the increased complexity of the global constraint.
机译:用于训练人工神经网络的权重的体系结构提供了全局约束,其不仅通过反向传播的误差而且还通过基于该迭代中所有权重的值来约束这些权重的全局约束来修改每次迭代中的神经元权重。通过使用约束梯度下降使适应全局约束的能力变得实用,该梯度下降近似于在训练中推导的误差梯度作为一个平面,从而抵消了全局约束增加的复杂性。

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