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Energy Efficient Sparse Connectivity from Imbalanced Synaptic Plasticity Rules

机译:突触可塑性规则不均衡带来的高能效稀疏连通性

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摘要

It is believed that energy efficiency is an important constraint in brain evolution. As synaptic transmission dominates energy consumption, energy can be saved by ensuring that only a few synapses are active. It is therefore likely that the formation of sparse codes and sparse connectivity are fundamental objectives of synaptic plasticity. In this work we study how sparse connectivity can result from a synaptic learning rule of excitatory synapses. Information is maximised when potentiation and depression are balanced according to the mean presynaptic activity level and the resulting fraction of zero-weight synapses is around 50%. However, an imbalance towards depression increases the fraction of zero-weight synapses without significantly affecting performance. We show that imbalanced plasticity corresponds to imposing a regularising constraint on the L 1-norm of the synaptic weight vector, a procedure that is well-known to induce sparseness. Imbalanced plasticity is biophysically plausible and leads to more efficient synaptic configurations than a previously suggested approach that prunes synapses after learning. Our framework gives a novel interpretation to the high fraction of silent synapses found in brain regions like the cerebellum.
机译:人们认为能量效率是大脑进化的重要限制。由于突触传递主导能量消耗,因此可以通过确保只有少数突触处于活动状态来节省能量。因此,稀疏代码的形成和稀疏连通性很可能是突触可塑性的基本目标。在这项工作中,我们研究了稀疏的连通性如何由兴奋性突触的突触学习规则产生。当根据平均突触前活动水平平衡增强和抑制能力时,信息将最大化,并且零重量突触的结果分数约为50%。但是,情绪低落会增加零重量突触的比例,而不会显着影响性能。我们表明,不平衡的可塑性对应于对突触权重向量的L 1范数施加正则化约束,该过程众所周知会引起稀疏。可塑性的不平衡在生物学上是合理的,并且比以前建议的在学习后修剪突触的方法导致更有效的突触构型。我们的框架为在大脑区域(如小脑)中发现的大量沉默突触提供了新颖的解释。

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