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Reconstruction of sensory stimuli encoded with integrate-and-fire neurons with random thresholds

机译:带有随机阈值的“整合并发射”神经元编码的感觉刺激的重建

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摘要

We present a general approach to the reconstruction of sensory stimuli encoded with leaky integrate-and-fire neurons with random thresholds. The stimuli are modeled as elements of a Reproducing Kernel Hilbert Space. The reconstruction is based on finding a stimulus that minimizes a regularized quadratic optimality criterion. We discuss in detail the reconstruction of sensory stimuli modeled as absolutely continuous functions as well as stimuli with absolutely continuous first-order derivatives. Reconstruction results are presented for stimuli encoded with single as well as a population of neurons. Examples are given that demonstrate the performance of the reconstruction algorithms as a function of threshold variability.
机译:我们提出了一种通用的方法,用于重建带有随机阈值的漏集成和发射神经元编码的感觉刺激。刺激被建模为“再生内核希尔伯特空间”的元素。重建基于找到最小化规则化二次最优性准则的刺激。我们详细讨论了建模为绝对连续函数以及具有绝对连续一阶导数的刺激的感觉刺激的重建。给出了用单个以及一组神经元编码的刺激的重建结果。给出了一些示例,这些示例说明了重建算法的性能与阈值变异性的关系。

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