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Energy-efficient population coding constrains network size of a neuronal array system

机译:节能人口编码限制了神经元阵列系统的网络大小

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摘要

We consider the open issue of how the energy efficiency of the neural information transmission process, in a general neuronal array, constrains the network size, and how well this network size ensures the reliable transmission of neural information in a noisy environment. By direct mathematical analysis, we have obtained general solutions proving that there exists an optimal number of neurons in the network, where the average coding energy cost (defined as energy consumption divided by mutual information) per neuron passes through a global minimum for both subthreshold and superthreshold signals. With increases in background noise intensity, the optimal neuronal number decreases for subthreshold signals and increases for suprathreshold signals. The existence of an optimal number of neurons in an array network reveals a general rule for population coding that states that the neuronal number should be large enough to ensure reliable information transmission that is robust to the noisy environment but small enough to minimize energy cost.
机译:我们考虑一个开放的问题,即在一般的神经元阵列中,神经信息传输过程的能效如何限制网络规模,以及该网络规模如何确保在嘈杂环境中可靠地传输神经信息。通过直接的数学分析,我们获得了一般的解决方案,证明在网络中存在最优数量的神经元,其中每个神经元的平均编码能量成本(定义为能量消耗除以互信息)均通过亚阈值和阈值的全局最小值。超阈值信号。随着背景噪声强度的增加,亚阈值信号的最佳神经元数目减少,而亚阈值信号的最佳神经元数目增加。阵列网络中最佳数量的神经元的存在揭示了总体编码的一般规则,该规则指出神经元数量应足够大以确保对嘈杂环境具有鲁棒性的可靠信息传输,但又应足够小以最小化能量消耗。

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