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Complex Cells in the Cat Striate Cortex Have Multiple Disparity Detectors in the Three-Dimensional Binocular Receptive Fields

机译:猫纹皮层中的复杂细胞在三维双目感受野中具有多个视差检测器。

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摘要

Along the visual pathway, neurons generally become more specialized for signaling a limited subset of stimulus attributes and become more invariant to changes in the stimulus position within the receptive fields (RFs). One of the likely mechanisms underlying such invariance appears to be pooling of detectors located at different positions. Does such spatial pooling occur for disparity-selective neurons in primary visual cortex? To examine whether the three-dimensional (3D) binocular RFs are constructed by pooling detectors for binocular disparity, we investigated binocular interactions in the 3D space for neurons in the cat striate cortex. Approximately one-third of complex cells showed the spatial pooling of disparity detectors to a significant degree, whereas the majority of simple cells did not. The degree of spatial pooling of disparity detectors along the preferred orientation axis was generally larger than that along the axis orthogonal to the orientation axis. We then reconstructed 3D binocular RFs in their complete form and examined their structures. Disparity tuning curves were compared across positions along the orientation axis in the RFs. A small population of cells appeared to show a gradual shift of the preferred disparity along this axis, indicating that they can potentially signal inclination in the 3D space. However, the majority of cells exhibited a position-invariant disparity tuning. Finally, disparity tuning curves were examined for all oblique angles in addition to horizontal and vertical. Tunings were broadest along the orientation axis as the disparity energy model predicts.
机译:沿着视觉路径,神经元通常会变得更加专门化,以发信号表示刺激属性的有限子集,并且变得对接受域(RF)内的刺激位置发生变化时更加不变。这种不变性的潜在机制之一似乎是位于不同位置的检测器的汇集。这样的空间汇集是否发生在初级视皮层的视差选择性神经元上?若要检查三维(3D)双眼RF是否通过合并用于双眼视差的检测器构造而成,我们调查了3D空间中猫纹皮层神经元的双眼交互作用。大约三分之一的复杂细胞在很大程度上显示了视差检测器的空间聚集,而大多数简单细胞却没有。沿着优选取向轴的视差检测器的空间汇集程度通常大于沿着与取向轴正交的轴的差异。然后,我们以其完整形式重建了3D双目RF,并检查了其结构。比较了沿RF中沿方向轴的位置之间的视差调整曲线。一小部分细胞似乎显示出首选视差沿着此轴逐渐移动,这表明它们可能表示3D空间中的倾斜度。然而,大多数细胞表现出位置不变的视差调节。最后,检查了除了水平和垂直以外的所有斜角的视差调整曲线。正如视差能量模型所预测的,沿定向轴的调整范围最广。

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