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具有延迟码的尖峰网络中特征同质性的前馈和抗噪检测。

Feed-forward and noise-tolerant detection of feature homogeneity in spiking networks with a latency code.

机构信息

Honda Research Institute Europe GmbH, Offenbach am Main, Germany.

Department of Computer Science, Biocomputation Group, University of Hertfordshire, Hatfield, UK.

出版信息

Biol Cybern. 2021 Apr;115(2):161-176. doi: 10.1007/s00422-021-00866-w. Epub 2021 Mar 31.

Abstract

In studies of the visual system as well as in computer vision, the focus is often on contrast edges. However, the primate visual system contains a large number of cells that are insensitive to spatial contrast and, instead, respond to uniform homogeneous illumination of their visual field. The purpose of this information remains unclear. Here, we propose a mechanism that detects feature homogeneity in visual areas, based on latency coding and spike time coincidence, in a purely feed-forward and therefore rapid manner. We demonstrate how homogeneity information can interact with information on contrast edges to potentially support rapid image segmentation. Furthermore, we analyze how neuronal crosstalk (noise) affects the mechanism's performance. We show that the detrimental effects of crosstalk can be partly mitigated through delayed feed-forward inhibition that shapes bi-phasic post-synaptic events. The delay of the feed-forward inhibition allows effectively controlling the size of the temporal integration window and, thereby, the coincidence threshold. The proposed model is based on single-spike latency codes in a purely feed-forward architecture that supports low-latency processing, making it an attractive scheme of computation in spiking neuronal networks where rapid responses and low spike counts are desired.

摘要

在视觉系统研究以及计算机视觉中,焦点通常集中在对比度边缘上。然而,灵长类动物的视觉系统包含大量对空间对比度不敏感的细胞,而是对其视野的均匀均匀照明做出反应。该信息的目的尚不清楚。在这里,我们提出了一种基于潜伏期编码和尖峰时间巧合的机制,以纯前馈方式快速检测视觉区域中的特征同质性。我们展示了同质性信息如何与对比度边缘信息相互作用,以潜在地支持快速图像分割。此外,我们分析了神经元串扰(噪声)如何影响机制的性能。我们表明,通过延迟前馈抑制可以部分减轻串扰的有害影响,从而形成双相突触后事件。前馈抑制的延迟允许有效地控制时间整合窗口的大小,从而控制一致性阈值。所提出的模型基于单尖峰潜伏期编码,采用纯前馈架构,支持低延迟处理,因此成为在需要快速响应和低尖峰计数的尖峰神经元网络中计算的有吸引力的方案。

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