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首页> 外文期刊>Neuron >Optimal information storage in noisy synapses under resource constraints.
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Optimal information storage in noisy synapses under resource constraints.

机译:在资源约束下,噪声突触中的最佳信息存储。

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摘要

Experimental investigations have revealed that synapses possess interesting and, in some cases, unexpected properties. We propose a theoretical framework that accounts for three of these properties: typical central synapses are noisy, the distribution of synaptic weights among central synapses is wide, and synaptic connectivity between neurons is sparse. We also comment on the possibility that synaptic weights may vary in discrete steps. Our approach is based on maximizing information storage capacity of neural tissue under resource constraints. Based on previous experimental and theoretical work, we use volume as a limited resource and utilize the empirical relationship between volume and synaptic weight. Solutions of our constrained optimization problems are not only consistent with existing experimental measurements but also make nontrivial predictions.
机译:实验研究表明,突触具有有趣的特性,在某些情况下还具有意想不到的特性。我们提出了一个理论框架,解释了这些属性中的三个:典型的中央突触有噪声,中央突触之间突触权重的分布较宽,神经元之间的突触连接稀疏。我们还评论了突触权重可能在不连续的步骤中变化的可能性。我们的方法是基于在资源限制下最大化神经组织的信息存储能力。基于先前的实验和理论工作,我们将体积作为有限的资源,并利用体积与突触重量之间的经验关系。我们受约束的优化问题的解决方案不仅与现有的实验测量结果一致,而且做出了不小的预测。

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