DeAngelis G C, Ohzawa I, Freeman R D
Bioengineering Group, School of Optometry, University of California, Berkeley 94720.
Nature. 1991 Jul 11;352(6331):156-9. doi: 10.1038/352156a0.
Binocular neurons in the visual cortex are thought to perform the first stage of processing for the fine stereoscopic depth discrimination exhibited by animals with frontally located eyes. Because lateral separation of the eyes gives a slightly different view to each eye, there are small variations in position (disparities), mainly along the horizontal dimension, between corresponding features in the two retinal images. The visual system uses these disparities to gauge depth. We studied neurons in the cat's visual cortex to determine whether the visual system uses the anisotropy in the range of horizontal and vertical disparities. We report here that there is a corresponding anisotropy in the cortical representation of binocular information: receptive-field profiles for left and right eyes are matched for cells that are tuned to horizontal orientations of image contours. For neurons tuned to vertical orientations, left and right receptive fields are predominantly dissimilar. Therefore, a major modification is required of the conventional notion of disparity processing. The modified scheme allows a unified encoding of monocular form and binocular disparity information.
视觉皮层中的双眼神经元被认为在处理具有朝前眼睛的动物所展现出的精细立体深度辨别方面执行第一阶段的加工。由于双眼的横向分离使得每只眼睛看到的景象略有不同,在两个视网膜图像中的对应特征之间,主要沿水平维度,在位置上存在微小差异(视差)。视觉系统利用这些视差来测量深度。我们研究了猫视觉皮层中的神经元,以确定视觉系统是否利用水平和垂直视差范围中的各向异性。我们在此报告,在双眼信息的皮层表征中存在相应的各向异性:对于调谐到图像轮廓水平方向的细胞,左眼和右眼的感受野轮廓是匹配的。对于调谐到垂直方向的神经元,左眼和右眼的感受野主要是不同的。因此,需要对传统的视差处理概念进行重大修正。修正后的方案允许对单眼形状和双眼视差信息进行统一编码。