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Developmental Stereo: Emergence of Disparity Preference in Models of the Visual Cortex

机译:发展立体声:视皮层模型中视差偏好的出现。

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How our brains develop disparity tuned V1 and V2 cells and then integrate binocular disparity into 3-D perception of the visual world is still largely a mystery. Moreover, computational models that take into account the role of the 6-layer architecture of the laminar cortex and temporal aspects of visual stimuli are elusive for stereo. In this paper, we present cortex-inspired computational models that simulate the development of stereo receptive fields, and use developed disparity sensitive neurons to estimate binocular disparity. Not only do the results show that the use of top-down signals in the form of supervision or temporal context greatly improves the performance of the networks, but also results in biologically compatible cortical maps-the representation of disparity selectivity is grouped, and changes gradually along the cortex. To our knowledge, this work is the first neuromorphic, end-to-end model of laminar cortex that integrates temporal context to develop internal representation, and generates accurate motor actions in the challenging problem of detecting disparity in binocular natural images. The networks reach a subpixel average error in regression, and 0.90 success rate in classification, given limited resources.
机译:我们的大脑如何调节V1和V2细胞的视差,然后将双眼视差整合到视觉世界的3D感知中,仍然很大程度上是个谜。此外,考虑到层状皮层的6层结构的作用和视觉刺激的时间方面的计算模型对于立体声是难以捉摸的。在本文中,我们介绍了受皮质启发的计算模型,这些模型可模拟立体感受器场的发展,并使用发达的视差敏感神经元来估​​计双眼视差。结果不仅表明以监督或时间背景形式使用自上而下的信号大大改善了网络的性能,而且还产生了生物相容的皮层图-视差选择性的表示被分组并逐渐变化沿着皮质。据我们所知,这项工作是第一个层状皮层的神经形态端对端模型,该模型整合了时态背景以发展内部表示,并在检测双眼自然图像中的差异这一具有挑战性的问题中产生了精确的运动动作。在资源有限的情况下,网络的回归平均误差为亚像素,分类成功率为0.90。

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