Litvak Vladimir, Sompolinsky Haim, Segev Idan, Abeles Moshe
The Interdisciplinary Center for Neural Computation, Jerusalem, Israel.
J Neurosci. 2003 Apr 1;23(7):3006-15. doi: 10.1523/JNEUROSCI.23-07-03006.2003.
The capability of feedforward networks composed of multiple layers of integrate-and-fire neurons to transmit rate code was examined. Synaptic connections were made only from one layer to the next, and excitation was balanced by inhibition. When time is discrete and the synaptic potentials rise instantaneously, we show that, for random uncorrelated input to layer one, the mean rate of activity in deep layers is essentially independent of input firing rate. This implies that the input rate cannot be transmitted reliably in such feedforward networks because neurons in a given layer tend to synchronize partially with each other because of shared inputs. As a result of this synchronization, the average firing rate in deep layers will either decay to zero or reach a stable fixed point, depending on model parameters. When time is treated continuously and the synaptic potentials rise instantaneously, these effects develop slowly, and rate transmission over a limited number of layers is possible. However, the correlations among neurons at the same layer hamper reliable assessment of firing rate by averaging over 100 msec (or less). When the synaptic potentials develop gradually, as is the realistic case, transmission of rate code fails. In a network in which inhibition only balances the mean excitation but is not timed precisely with it, neurons in each layer fire together, and this volley successively propagates from layer to layer. We conclude that the transmission of rate code in feedforward networks is highly unlikely.
研究了由多层积分发放神经元组成的前馈网络传输速率编码的能力。突触连接仅从一层到下一层,并且兴奋由抑制来平衡。当时间是离散的且突触电位瞬间上升时,我们表明,对于输入到第一层的随机不相关输入,深层的平均活动速率基本上与输入发放速率无关。这意味着在这样的前馈网络中输入速率不能被可靠地传输,因为给定层中的神经元由于共享输入往往会部分地彼此同步。由于这种同步,深层的平均发放速率将要么衰减到零要么达到一个稳定的固定点,这取决于模型参数。当时间被视为连续的且突触电位瞬间上升时,这些效应发展缓慢,并且在有限数量的层上进行速率传输是可能的。然而,同一层神经元之间的相关性妨碍了通过在100毫秒(或更短)内进行平均来可靠地评估发放速率。当突触电位逐渐发展时,如同实际情况那样,速率编码的传输失败。在一个抑制仅平衡平均兴奋但与之时间上不精确同步的网络中,每层中的神经元一起发放,并且这种齐射依次从一层传播到另一层。我们得出结论,在前馈网络中速率编码的传输极不可能。