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Integer Quadratic Integrate-and-Fire (IQIF): A Neuron Model for Digital Neuromorphic Systems

机译:整数二次整合和火(IQIF):数字神经晶体系统的神经元模型

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Simulation of a spiking neural network involves solving a large number of differential equations. This is a challenge even for modern computer systems, especially when simulating large-scale neural networks. To address this challenge, we design a neuron model: the Integer Quadratic Integrate-and-Fire (IQIF) neuron. Instead of computing on floating point numbers, as is typical with other spiking neuron models, the IQIF model is computed purely on integers. The IQIF model is a quantized and linearized version of the classic quadratic integrate-and-fire (QIF) model. The IQIF model retains all dynamic characteristics of the QIF model with much lower computation complexity, at the cost of a limited dynamic range of the membrane potential and the synaptic current. We compare IQIF to other spiking neuron models based on their simulation speeds and the number of neuronal behaviors they can perform. We further compare the performance of IQIF with the leaky integrate-and-fire model in a classical decision-making network that exhibits nonlinear attractor dynamics. Our results show that the IQIF neurons are capable of performing computation that other spiking neuron models can do while having the advantages of speed. Moreover, the IQIF model is digital hardware friendly due to its pure integer operation and is therefore easily to be implemented in custom-built neuromorphic systems.
机译:尖峰神经网络的模拟涉及求解大量微分方程。这是一个挑战,即使是现代计算机系统,特别是在模拟大规模神经网络时。为了解决这一挑战,我们设计了一个神经元模型:整数二次融合和火(IQIF)神经元。与其他尖刺神经元模型一样典型的典型值,而不是计算浮点数,而不是计算,而是纯粹在整数上计算IQIF模型。 IQIF模型是经典二次集成和火(QIF)模型的量化和线性化版本。 IQIF模型以膜电位的有限动态范围和突触电流的有限动态范围的成本保持QIF模型的所有动态特性。我们将iqif基于其模拟速度和它们可以执行的神经元行为的数量进行比较其他尖峰神经元模型。我们进一步比较了IQIF在展示非线性吸引力动态的经典决策网络中对漏洞集成和火模型的性能。我们的研究结果表明,IQIF神经元能够执行其他尖刺神经元模型在具有速度优势的同时可以进行计算。此外,由于其纯整数操作,IQIF模型是数字硬件友好的,因此在定制的神经形式系统中容易实现。

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