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Effect of Structure on Function in Model Nerve Nets

机译:结构对模型神经网络功能的影响

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摘要

A theoretical analysis has been made on the effect of the pattern of interneuronal connectivity in model nerve nets on the activity of these nets. Two types of nets have been investigated: one in which the likelihood of a connection between a given neuron and any other element in the net is given by a Poisson probability distribution, and a second type in which the pattern of interconnection follows a Gaussian distribution. An analytical treatment is presented of the equations for noiseless nets in these two conditions. The principal result is that nets with Poisson connectivity law are activated by extraneous firing of a single neuron and continue in spontaneous activity indefinitely. On the other hand, similar nets in which the connections are, however, distributed according to a normal connectivity law, exhibit a definite threshold and produce spontaneous activity only subsequent to extraneous activation of a substantial fraction of the population. Moreover, spontaneous activity in Gaussian nets, but not in Poisson nets, becomes extinguished if the number of active neurons falls below the critical threshold. Some neuroanatomical implications are discussed which suggest that the pyramidal system of the cerebral cortex and other neuronal systems histologically characterized by large numbers of synapses per neuron may incorporate a Gaussian connectivity law, whereas a Poisson law may be characteristic of these cortical layers and nuclei primarily containing granule cells.
机译:对模型神经网络中神经元间连通性模式对这些网络活动的影响进行了理论分析。已经研究了两种类型的网络:一种是通过泊松概率分布给出给定神经元与网络中任何其他元素之间连接的可能性;另一种是其中互连模式遵循高斯分布。对这两种情况下的无噪声网络方程进行了解析处理。主要结果是,具有泊松连通性定律的网络被单个神经元的外部激发激活,并无限期地持续自发活动。另一方面,其中的连接按照正常的连接律分布的类似网络,只有在大量人口的外部激活之后才显示确定的阈值并产生自发活动。此外,如果活动神经元的数量下降到临界阈值以下,高斯网络中的自发活动将消失,但泊松网络中的自发活动将消失。讨论了一些神经解剖学意义,这些暗示表明,以每个神经元大量突触为组织学特征的大脑皮质锥体系统和其他神经系统,可能包含高斯连通性定律,而泊松定律可能是这些皮质层和细胞核的特征,主要包含颗粒细胞。

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