Solving da Vinci stereopsis with depth-edge-selective V2 cells

被引:23
作者
Assee, Andrew
Qian, Ning
机构
[1] Columbia Univ, Ctr Neurobiol & Behav, New York, NY 10032 USA
[2] Columbia Univ, Dept Physiol & Cellular Biophys, New York, NY 10032 USA
关键词
binocular disparity; ocularity; half-occlusion; stereovision; disparity step;
D O I
10.1016/j.visres.2007.07.003
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
We propose a new model for da Vinci stereopsis based on a coarse-to-fine disparity energy computation in VI and disparity-boundary-selective units in V2. Unlike previous work, our model contains only binocular cells, relies on distributed representations of disparity, and has a simple V1-to-V2 feedforward structure. We demonstrate with random-dot stereograms that the V2 stage of our model is able to determine the location and the eye-of-origin of monocularly occluded regions, and improve disparity map computation. We also examine a few related issues. First, we argue that since monocular regions are binocularly defined, they cannot generally be detected by monocular cells. Second, we show that our coarse-to-fine V I model for conventional stereopsis explains double matching in Panum's limiting case. This provides computational support to the notion that the perceived depth of a monocular bar next to a binocular rectangle may not be da Vinci stereopsis per se [Gillam, B., Cook, M., & Blackburn, S. (2003). Monocular discs in the occlusion zones of binocular surfaces do not have quantitative depth-a comparison with Panum's limiting case. Perception 32, 1009-1019.]. Third, we demonstrate that some stimuli previously deemed invalid have simple, valid geometric interpretations. Our work suggests that studies of da Vinci stereopsis should focus on stimuli more general than the bar-and-rectangle type and that disparity-boundary-selective V2 cells may provide a simple physiological mechanism for da Vinci stereopsis. Published by Elsevier Ltd.
引用
收藏
页码:2585 / 2602
页数:18
相关论文
共 42 条
[1]   THE ROLE OF PARTIAL OCCLUSION IN STEREOPSIS [J].
ANDERSON, BL .
NATURE, 1994, 367 (6461) :365-368
[2]  
[Anonymous], P 1998 CONN MOD SUMM
[3]  
ASSEE A, 2006, SOC NEUR M
[4]  
BURKHALTER A, 1986, J NEUROSCI, V6, P2327
[5]   A laminar cortical model of stereopsis and 3D surface perception: closure and da Vinci stereopsis [J].
Cao, YQ ;
Grossberg, S .
SPATIAL VISION, 2005, 18 (05) :515-578
[6]   A coarse-to-fine disparity energy model with both phase-shift and position-shift receptive field mechanisms [J].
Chen, YH ;
Qian, N .
NEURAL COMPUTATION, 2004, 16 (08) :1545-1577
[7]   Depth of monocular elements in a binocular scene: The conditions for da Vinci stereopsis [J].
Cook, M ;
Gillam, B .
JOURNAL OF EXPERIMENTAL PSYCHOLOGY-HUMAN PERCEPTION AND PERFORMANCE, 2004, 30 (01) :92-103
[8]   Early demonstrations of subjective contours, amodal completion, and depth from half-occlusions: "Stereoscopic experiments with silhouettes" by Adolf von Szily (1921) [J].
Ehrenstein, WH ;
Gillam, BJ .
PERCEPTION, 1998, 27 (12) :1407-1416
[9]   VISUAL TOPOGRAPHY OF V2 IN THE MACAQUE [J].
GATTASS, R ;
GROSS, CG ;
SANDELL, JH .
JOURNAL OF COMPARATIVE NEUROLOGY, 1981, 201 (04) :519-539
[10]   THE ROLE OF MONOCULAR REGIONS IN STEREOSCOPIC DISPLAYS [J].
GILLAM, B ;
BORSTING, E .
PERCEPTION, 1988, 17 (05) :603-608