A Model for the Diffusive Filling-In Algorithm Operating in Spike Mode

Genildo Nonato Santos, J. Gomes
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Abstract

To run cortical circuit simulations in spike mode, i.e. taking into account the neural representation of information in terms of sequences of electrical pulses (also known as spikes), the use of customized hardware, which is specific for this purpose, is recommended. Simulations using more traditional hardware can be prohibitive. In this context, theoretical predictions are important for customized hardware design. For example, theoretical predictions lead to an adequate neuron model choice. To make such theoretical predictions, the cortical circuit simulations are carried out in amplitude mode. Differently from the spike mode, in amplitude mode information is represented by sequences of scalar values that describe neural input and output spike rates. In this paper, it was proposed amplitude and spike mode simulations of a cortical algorithm, namely the diffusive filling-in algorithm, to investigate whether predictions based on the amplitude-mode results approximate well the behavior of the customized hardware (spike mode results). The diffusive filling-in algorithm was chosen because it is simple enough for spike-mode simulation in a conventional computer, but the proposed amplitude-mode prediction method is the same for more complex algorithms or circuits. We provide a highly realistic comparison between amplitude-mode and spike-mode in the diffusive filling-in case, which suggests that the amplitude mode is reliable for theoretical predictions useful for customized hardware design for cortical circuit simulation. The goal of this paper is not to bring closure to these discussions but to suggest a way of avoiding possible issues that could compromise the success of the customized device design.
尖峰模式下的扩散填充算法模型
为了在尖峰模式下运行皮质电路模拟,即考虑到电脉冲序列(也称为尖峰)中信息的神经表示,建议使用专门用于此目的的定制硬件。使用更传统的硬件进行模拟可能会令人望而却步。在这种情况下,理论预测对于定制硬件设计非常重要。例如,理论预测会导致适当的神经元模型选择。为了做出这样的理论预测,在振幅模式下进行了皮质回路模拟。与尖峰模式不同,在振幅模式下,信息由描述神经输入和输出尖峰率的标量值序列表示。本文提出了一种皮质算法(即扩散填充算法)的振幅和尖峰模式模拟,以研究基于振幅模式结果的预测是否很好地近似于定制硬件的行为(尖峰模式结果)。之所以选择扩散填充算法,是因为它对于传统计算机上的尖峰模式模拟来说足够简单,但对于更复杂的算法或电路,所提出的幅模预测方法是相同的。我们提供了在扩散填充情况下振幅模式和尖峰模式之间的高度现实的比较,这表明振幅模式是可靠的理论预测,有助于定制硬件设计的皮质电路模拟。本文的目的不是结束这些讨论,而是提出一种避免可能危及定制设备设计成功的可能问题的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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