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猫视觉皮层中简单细胞对双眼视差的编码。

Encoding of binocular disparity by simple cells in the cat's visual cortex.

作者信息

Ohzawa I, DeAngelis G C, Freeman R D

机构信息

School of Optometry, University of California, Berkeley 94720-2020, USA.

出版信息

J Neurophysiol. 1996 May;75(5):1779-805. doi: 10.1152/jn.1996.75.5.1779.

DOI:10.1152/jn.1996.75.5.1779
PMID:8734580
Abstract
  1. Spatiotemporal receptive fields (RFs) for left and right eyes were studied for simple cells in the cat's striate cortex to examine the idea that stereoscopic depth information is encoded via structural differences of RFs between the two eyes. Traditional models are based on neurons that possess matched RF profiles for the two eyes. We propose a model that requires a subset of simple cells with mismatched RF profiles for the two eyes in addition to those with similar RF structure. 2. A reverse correlation technique, which allows a rapid measurement of detailed RF profiles in the joint space-time domains, was used to map RFs for isolated single neurons recorded extracellularly in the anesthetized paralyzed cat. 3. Approximately 30% of our sample of cells shows substantial differences between spatial RF structure for the two eyes. Nearly all of these neurons prefer orientations between oblique and vertical, and are therefore presumed to be involved in processing horizontal disparities. On the other hand, cells that prefer orientations near horizontal have matched RF profiles for the two eyes. Considered together, these findings suggest that the visual system takes advantage of the orientation anisotropy of binocular disparities present in the retinal images. 4. For some cells, the spatial structure of the RF changes over the time course of the response (inseparable RF in the space-time domain). In these cases, the change is similar for the two eyes, and therefore the difference remains nearly constant at all times. Because the difference of the RF structure between the two eyes is the critical determinant of a cell's relative depth selectivity for the proposed model, space-time inseparability of RFs is not an obstacle for consistent representation of stereoscopic information. 5. RF parameters including amplitude, RF width, and optimal spatial frequency are generally well matched for the two eyes over the time course of the response. The preferred speed and direction of motion are also well matched for the two eyes. These results suggest that the encoding of motion in depth is not likely to be a function of simple cells in the striate cortex. 6. The results presented here are consistent with our model, in which stereoscopic depth information is encoded via differences in the spatial structure of RFs for the two eyes. This model provides a natural binocular extension of the current notion of monocular spatial form encoding by a population of simple cells. Note, however, that our findings do not exclude the possibility that positional shifts of RFs also play a role in determining the disparity selectivity of cortical neurons.
摘要
  1. 研究了猫纹状皮层中简单细胞左右眼的时空感受野(RFs),以检验立体深度信息是否通过两眼之间RFs的结构差异进行编码这一观点。传统模型基于两眼具有匹配RF轮廓的神经元。我们提出了一个模型,除了具有相似RF结构的简单细胞外,还需要一部分两眼RF轮廓不匹配的简单细胞。2. 一种反向相关技术被用于绘制在麻醉瘫痪猫的细胞外记录的单个分离神经元的RFs,该技术能够在联合时空域中快速测量详细的RF轮廓。3. 我们样本中约30%的细胞两眼的空间RF结构存在显著差异。几乎所有这些神经元偏好倾斜和垂直之间的方向,因此推测它们参与水平视差的处理。另一方面,偏好水平附近方向的细胞两眼的RF轮廓是匹配的。综合来看,这些发现表明视觉系统利用了视网膜图像中存在的双眼视差的方向各向异性。4. 对于一些细胞,RF的空间结构在反应的时间过程中会发生变化(时空域中不可分离的RF)。在这些情况下,两眼的变化相似,因此差异在所有时间几乎保持恒定。因为两眼之间RF结构的差异是所提出模型中细胞相对深度选择性的关键决定因素,所以RF的时空不可分离性并不是立体信息一致表示的障碍。5. 在反应的时间过程中,包括幅度、RF宽度和最佳空间频率在内的RF参数通常两眼匹配良好。两眼对运动的偏好速度和方向也匹配良好。这些结果表明深度运动的编码不太可能是纹状皮层中简单细胞的功能。6. 这里呈现的结果与我们的模型一致,在该模型中,立体深度信息通过两眼RFs的空间结构差异进行编码。该模型为当前由一群简单细胞进行单眼空间形式编码的概念提供了自然的双眼扩展。然而,请注意,我们的发现并不排除RFs的位置移动在确定皮层神经元的视差选择性中也起作用的可能性。

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