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Emergence of Dynamic Memory Traces in Cortical Microcircuit Models through STDP

机译:通过STDP在皮质微电路模型中动态内存迹线的出现

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摘要

Numerous experimental data suggest that simultaneously or sequentially activated assemblies of neurons play a key role in the storage and computational use of long-term memory in the brain. However, a model that elucidates how these memory traces could emerge through spike-timing-dependent plasticity (STDP) has been missing. We show here that stimulus-specific assemblies of neurons emerge automatically through STDP in a simple cortical microcircuit model. The model that we consider is a randomly connected network of well known microcircuit motifs: pyramidal cells with lateral inhibition. We show that the emergent assembly codes for repeatedly occurring spatiotemporal input patterns tend to fire in some loose, sequential manner that is reminiscent of experimentally observed stereotypical trajectories of network states. We also show that the emergent assembly codes add an important computational capability to standard models for online computations in cortical microcircuits: the capability to integrate information from long-term memory with information from novel spike inputs.
机译:许多实验数据表明,同时或顺序激活的神经元集合在大脑长期记忆的存储和计算使用中起着关键作用。但是,缺少一个模型来阐明这些记忆痕迹如何通过依赖于尖峰时序的可塑性(STDP)出现。我们在这里显示,在一个简单的皮层微电路模型中,通过STDP自动出现神经元的特定刺激集合。我们考虑的模型是一个由众所周知的微电路图案组成的随机连接网络:具有横向抑制作用的锥体细胞。我们表明,反复出现的时空输入模式的紧急汇编代码倾向于以某种宽松的顺序方式触发,这让人联想到网络状态的实验观察到的定型轨迹。我们还表明,出现的汇编代码为皮层微电路在线计算的标准模型增加了重要的计算能力:将长期存储器中的信息与新型尖峰输入中的信息相集成的能力。

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