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视网膜-皮层处理中具有生物学合理性的多尺度滤波作为一种知觉分组机制

Bioplausible multiscale filtering in retino-cortical processing as a mechanism in perceptual grouping.

作者信息

Nematzadeh Nasim, Powers David M W, Lewis Trent W

机构信息

College of Science and Engineering, Flinders University, GPO Box 2100, Adelaide, SA, 5001, Australia.

出版信息

Brain Inform. 2017 Dec;4(4):271-293. doi: 10.1007/s40708-017-0072-8. Epub 2017 Sep 8.

Abstract

Why does our visual system fail to reconstruct reality, when we look at certain patterns? Where do Geometrical illusions start to emerge in the visual pathway? How far should we take computational models of vision with the same visual ability to detect illusions as we do? This study addresses these questions, by focusing on a specific underlying neural mechanism involved in our visual experiences that affects our final perception. Among many types of visual illusion, 'Geometrical' and, in particular, 'Tilt Illusions' are rather important, being characterized by misperception of geometric patterns involving lines and tiles in combination with contrasting orientation, size or position. Over the last decade, many new neurophysiological experiments have led to new insights as to how, when and where retinal processing takes place, and the encoding nature of the retinal representation that is sent to the cortex for further processing. Based on these neurobiological discoveries, we provide computer simulation evidence from modelling retinal ganglion cells responses to some complex Tilt Illusions, suggesting that the emergence of tilt in these illusions is partially related to the interaction of multiscale visual processing performed in the retina. The output of our low-level filtering model is presented for several types of Tilt Illusion, predicting that the final tilt percept arises from multiple-scale processing of the Differences of Gaussians and the perceptual interaction of foreground and background elements. The model is a variation of classical receptive field implementation for simple cells in early stages of vision with the scales tuned to the object/texture sizes in the pattern. Our results suggest that this model has a high potential in revealing the underlying mechanism connecting low-level filtering approaches to mid- and high-level explanations such as 'Anchoring theory' and 'Perceptual grouping'.

摘要

当我们观察某些图案时,为什么我们的视觉系统无法重构现实?几何错觉在视觉通路的何处开始出现?我们应该在多大程度上采用具有与我们相同的检测错觉视觉能力的视觉计算模型?本研究通过关注影响我们最终感知的视觉体验中涉及的特定潜在神经机制来解决这些问题。在众多类型的视觉错觉中,“几何”错觉,尤其是“倾斜错觉”相当重要,其特征是对涉及线条和图案块的几何图案产生错误感知,这些图案块具有对比的方向、大小或位置。在过去十年中,许多新的神经生理学实验让我们对视网膜处理在何时、何处发生以及发送到皮层进行进一步处理的视网膜表征的编码性质有了新的认识。基于这些神经生物学发现,我们提供了计算机模拟证据,通过模拟视网膜神经节细胞对一些复杂倾斜错觉的反应,表明这些错觉中倾斜的出现部分与视网膜中进行的多尺度视觉处理的相互作用有关。我们针对几种类型的倾斜错觉展示了低级滤波模型的输出,预测最终的倾斜感知源于高斯差分的多尺度处理以及前景和背景元素的感知相互作用。该模型是视觉早期阶段简单细胞经典感受野实现的一种变体,其尺度根据图案中的物体/纹理大小进行了调整。我们的结果表明,该模型在揭示将低级滤波方法与诸如“锚定理论”和“感知分组”等中高级解释联系起来的潜在机制方面具有很大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1843/5709283/7919d6467d0e/40708_2017_72_Fig1_HTML.jpg

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