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BPSpike Ⅱ: A New Backpropagation Learning Algorithm for Spiking Neural Networks

机译:BPSpikeⅡ:尖峰神经网络的一种新的反向传播学习算法

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Using gradient descent, we propose a new backpropagation learning algorithm for spiking neural networks with multi-layers, multi-synapses between neurons, and multi-spiking neurons. It adjusts synaptic weights, delays, and time constants, and neurons' thresholds in output and hidden layers. It guarantees convergence to minimum error point, and unlike SpikeProp and its extensions, does not need a one-to-one correspondence between actual and desired spikes in advance. So, it is stably and widely applicable to practical problems.
机译:使用梯度下降,我们提出了一种新的反向传播学习算法,用于使神经网络具有多层,神经元之间的多个突触和多峰神经元。它可以调整突触权重,延迟和时间常数,以及输出层和隐藏层中神经元的阈值。它保证收敛到最小错误点,并且与SpikeProp及其扩展不同,它不需要预先在实际峰值和所需峰值之间一一对应。因此,它稳定而广泛地适用于实际问题。

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