Sakai Yutaka
Department of Information and Computer Science, Faculty of Engineering, Saitama University, Saitama 338-8570, Japan.
Biosystems. 2002 Oct-Dec;67(1-3):221-7. doi: 10.1016/s0303-2647(02)00080-1.
A cortical neuron puts thousands of synaptic contacts on other neurons. The effect of the spike event spreads over a large number of neurons. So it is possible for spike timings to be correlated to each other. But there have not been so many reports of spike timing correlations, while there have been many reports of somewhat longer time range correlations through mean spike rates. Can independent firings be preserved in spite of a number of connections? The present study attempts to determine whether independent firings can be propagated through a simple feed-forward neural network. It is assumed that each unit obeys a threshold mechanism at each discrete time and that connections are statistically uniform with the excitation balanced to the inhibition and delay distributed. It is found that the independent firings can be stably propagated through the feed-forward network at a network parameter region, which contains the physiologically reasonable range. Another interesting result is that the independency-stable spike probability has a lower limit 0.0323.
一个皮层神经元会与其他神经元建立数千个突触连接。尖峰事件的影响会扩散到大量神经元。因此,尖峰时间相互关联是有可能的。但是关于尖峰时间相关性的报道并不多,而通过平均尖峰率在稍长的时间范围内的相关性却有很多报道。尽管存在大量连接,独立放电能否得以保留呢?本研究试图确定独立放电能否通过一个简单的前馈神经网络进行传播。假设每个单元在每个离散时间都遵循阈值机制,并且连接在统计上是均匀的,兴奋与抑制平衡,延迟分布。研究发现,在包含生理合理范围的网络参数区域内,独立放电能够在前馈网络中稳定传播。另一个有趣的结果是,独立稳定的尖峰概率有一个下限0.0323。