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A computational study of the role of spatial receptive field structure in processing natural and non-natural scenes

机译:空间接收现场结构在加工自然和非自然场景中的作用计算研究

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摘要

The center-surround receptive field structure, ubiquitous in the visual system, is hypothesized to be evolutionarily advantageous in image processing tasks. We address the potential functional benefits and shortcomings of spatial localization and center-surround antagonism in the context of an integrate-and-fire neuronal network model with image-based forcing. Utilizing the sparsity of natural scenes, we derive a compressive-sensing framework for input image reconstruction utilizing evoked neuronal firing rates. We investigate how the accuracy of input encoding depends on the receptive field architecture, and demonstrate that spatial localization in visual stimulus sampling facilitates marked improvements in natural scene processing beyond uniformly-random excitatory connectivity. However, for specific classes of images, we show that spatial localization inherent in physiological receptive fields combined with information loss through nonlinear neuronal network dynamics may underlie common optical illusions, giving a novel explanation for their manifestation. In the context of signal processing, we expect this work may suggest new sampling protocols useful for extending conventional compressive sensing theory.
机译:在视觉系统中无处不在的中心环绕接收场结构,被假设在图像处理任务中被进化地是有利的。在整合 - 基于图像强制的整合和灭火神经元网络模型的背景下,我们解决了空间定位和中心环绕对抗的潜在功能效益和缺点。利用自然场景的稀疏性,我们推导了一种用于利用诱发的神经元射击率的输入图像重建的压缩传感框架。我们研究了输入编码的准确性如何取决于接收领域架构,并证明了视觉刺激采样中的空间定位有助于显着改善自然场景处理,超出均匀随机兴奋连接。然而,对于特定的图像类别,我们表明,通过非线性神经网络动态地结合信息丢失的生理接收领域固有的空间定位可能是常见的光学幻觉,为其表现提供了一种新颖的解释。在信号处理的背景下,我们预计这项工作可能会建议用于扩展传统压缩感测理论的新采样协议。

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