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Perceptron learning rule derived from spike-frequency adaptation and spike-time-dependent plasticity

机译:从峰值频率适应和峰值时间相关可塑性导出的感知器学习规则

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摘要

It is widely believed that sensory and motor processing in the brain is based on simple computational primitives rooted in cellular and synaptic physiology. However, many gaps remain in our understanding of the connections between neural computations and biophysical properties of neurons. Here, we show that synaptic spike-time-dependent plasticity (STDP) combined with spike-frequency adaptation (SFA) in a single neuron together approximate the well-known perceptron learning rule. Our calculations and integrate-and-fire simulations reveal that delayed inputs to a neuron endowed with STDP and SFA precisely instruct neural responses to earlier arriving inputs. We demonstrate this mechanism on a developmental example of auditory map formation guided by visual inputs, as observed in the external nucleus of the inferior colliculus (ICX) of barn owls. The interplay of SFA and STDP in model ICX neurons precisely transfers the tuning curve from the visual modality onto the auditory modality, demonstrating a useful computation for multimodal and sensory-guided processing.
机译:人们普遍认为,大脑中的感觉和运动处理是基于植于细胞和突触生理中的简单计算原语。但是,在我们对神经计算与神经元生物物理特性之间的联系的理解中,仍有许多差距。在这里,我们显示单个神经元中突触时间依赖可塑性(STDP)与峰值频率适应(SFA)结合在一起,共同近似了众所周知的感知器学习规则。我们的计算和积分与发射模拟表明,延迟输入具有STDP和SFA的神经元,可以精确地指示对较早到达的输入的神经反应。我们在视觉输入指导下听觉图形成的发展示例上证明了这一机制,正如在仓n的下丘脑(ICX)的外核中观察到的那样。 SFA和STDP在模型ICX神经元中的相互作用将调节曲线从视觉模态精确地转移到听觉模态,证明了对多模态和感觉引导处理的有用计算。

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