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Self-organized Criticality via Retro-Synaptic Signals

机译:通过突触后信号的自组织临界

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The brain is a complex system par excellence. In the last decade the observation of neuronal avalanches in neocortical circuits suggested the presence of self-organised criticality in brain networks. The occurrence of this type of dynamics implies several benefits to neural computation. However, the mechanisms that give rise to critical behaviour in these systems, and how they interact with other neuronal processes such as synaptic plasticity are not fully understood. In this paper, we present a long-term plasticity rule based on retro-synaptic signals that allows the system to reach a critical state in which clusters of activity are distributed as a power-law, among other observables. Our synaptic plasticity rule coexists with other synaptic mechanisms such as spike-timing-dependent plasticity, which implies that the resulting synaptic modulation captures not only the temporal correlations between spiking times of pre- and post-synaptic units, which has been suggested as requirement for learning and memory in neural systems, but also drives the system to a state of optimal neural information processing.
机译:大脑是一个卓越的复杂系统。在过去的十年中,对新皮质回路中神经元雪崩的观察表明,大脑网络中存在自组织的临界状态。这种动力学的出现意味着神经计算有很多好处。但是,尚未完全了解在这些系统中引起关键行为的机制以及它们如何与其他神经元过程相互作用(如突触可塑性)。在本文中,我们提出了一个基于突触后信号的长期可塑性规则,该规则使系统达到临界状态,在该状态中,活动簇作为幂律分布,还有其他可观察到的现象。我们的突触可塑性规则与其他突触机制共存,例如依赖于尖峰时序的可塑性,这意味着所产生的突触调制不仅捕获了突触前和突触后单位突波时间之间的时间相关性,这被认为是对突触的要求。在神经系统中学习和记忆,但也使系统进入最佳神经信息处理状态。

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