首页> 外文会议>Electrical and Computer Engineering, 2003. IEEE CCECE 2003. Canadian Conference on >An algorithm based on evolutionary programming for training artificial neural networks with nonconventional neurons
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An algorithm based on evolutionary programming for training artificial neural networks with nonconventional neurons

机译:基于进化规划的非常规神经元训练人工神经网络算法

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In this paper, we exploit the capability of evolutionary programming for construction and training neural networks, independent of the applied models of the neurons. The main application of this algorithm is training neural networks with elaborated models for neurons. For instance when because of implementation limitations a deviation from ideal models is mandatory, this algorithm can be used to take these deviations into account during the training process. The functionality of the proposed algorithm is demonstrated by training a neural controller with nonconventional neurons.
机译:在本文中,我们利用进化规划的能力来构建和训练神经网络,而与神经元的应用模型无关。该算法的主要应用是使用详细的神经元模型训练神经网络。例如,当由于实施限制而必须偏离理想模型时,可以使用该算法在训练过程中考虑这些偏离。通过用非常规神经元训练神经控制器来演示所提出算法的功能。

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