Neuronal Mechanism for Compensation of Longitudinal Chromatic Aberration-Derived Algorithm

被引:6
作者
Barkan, Yuval [1 ]
Spitzer, Hedva [2 ]
机构
[1] Tel Aviv Univ, Fac Engn, Biomed Engn Dept, Tel Aviv, Israel
[2] Tel Aviv Univ, Fac Engn, Elect Engn Sch, Tel Aviv, Israel
来源
FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY | 2018年 / 6卷
关键词
aberration; chromatic adaptation; compensatory mechanisms; computer model; visual perception;
D O I
10.3389/fbioe.2018.00012
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
The human visual system faces many challenges, among them the need to overcome the imperfections of its optics, which degrade the retinal image. One of the most dominant limitations is longitudinal chromatic aberration (LCA), which causes short wavelengths (blue light) to be focused in front of the retina with consequent blurring of the retinal chromatic image. The perceived visual appearance, however, does not display such chromatic distortions. The intriguing question, therefore, is how the perceived visual appearance of a sharp and clear chromatic image is achieved despite the imperfections of the ocular optics. To address this issue, we propose a neural mechanism and computational model, based on the unique properties of the S-cone pathway. The model suggests that the visual system overcomes LCA through two known properties of the S channel: (1) omitting the contribution of the S channel from the high-spatial resolution pathway (utilizing only the L and M channels). (b) Having large and coextensive receptive fields that correspond to the small bistratified cells. Here, we use computational simulations of our model on real images to show how integrating these two basic principles can provide a significant compensation for LCA. Further support for the proposed neuronal mechanism is given by the ability of the model to predict an enigmatic visual phenomenon of large color shifts as part of the assimilation effect.
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页数:10
相关论文
共 55 条
[1]   Neural compensation for the eye's optical aberrations [J].
Artal, P ;
Chen, L ;
Fernández, EJ ;
Singer, B ;
Manzanera, S ;
Williams, DR .
JOURNAL OF VISION, 2004, 4 (04) :281-287
[2]   Visual effect of the combined correction of spherical and longitudinal chromatic aberrations [J].
Artal, Pablo ;
Manzanera, Silvestre ;
Piers, Patricia ;
Weeber, Henk .
OPTICS EXPRESS, 2010, 18 (02) :1637-1648
[3]  
BEDFORD RE, 1957, J OPT SOC AM, V47, P564
[4]   Colour at edges and colour spreading in McCollough effects [J].
Broerse, J ;
Vladusich, T ;
O'Shea, RP .
VISION RESEARCH, 1999, 39 (07) :1305-1320
[5]   Seeing with S cones [J].
Calkins, DJ .
PROGRESS IN RETINAL AND EYE RESEARCH, 2001, 20 (03) :255-287
[6]   EFFECT OF CHROMATIC ABERRATION ON VISUAL ACUITTY [J].
CAMPBELL, FW ;
GUBISCH, RW .
JOURNAL OF PHYSIOLOGY-LONDON, 1967, 192 (02) :345-&
[7]   Chromatic assimilation: spread light or neural mechanism? [J].
Cao, DC ;
Shevell, SK .
VISION RESEARCH, 2005, 45 (08) :1031-1045
[8]   OBJECTIVE MEASUREMENTS OF LONGITUDINAL CHROMATIC ABERRATION OF HUMAN EYE [J].
CHARMAN, WN ;
JENNINGS, JAM .
VISION RESEARCH, 1976, 16 (09) :999-1005
[9]   Simulation of eccentric photorefraction images [J].
Chen, YL ;
Tan, B ;
Lewis, JWL .
OPTICS EXPRESS, 2003, 11 (14) :1628-1642
[10]   Spatial structure of cone inputs to color cells in alert macaque primary visual cortex (V-1) [J].
Conway, BR .
JOURNAL OF NEUROSCIENCE, 2001, 21 (08) :2768-2783