No functional magnetic resonance imaging evidence for brightness and color filling-in in early human visual cortex

被引:78
作者
Cornelissen, FW
Wade, AR
Vladusich, T
Dougherty, RF
Wandell, BA
机构
[1] Univ Groningen, Sch Behav & Cognit Neurosci, Lab Expt Ophthalmol, NL-9700 RB Groningen, Netherlands
[2] Univ Groningen, Sch Behav & Cognit Neurosci, BCN Neuroimaging Ctr, NL-9700 RB Groningen, Netherlands
[3] Smith Kettlewell Eye Res Inst, San Francisco, CA 94115 USA
[4] Stanford Univ, Dept Psychol, Stanford, CA 94305 USA
关键词
brightness; surface; filling-in; luminance; color; contrast; fMRI; early visual cortex;
D O I
10.1523/JNEUROSCI.4382-05.2006
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The brightness and color of a surface depends on its contrast with nearby surfaces. For example, a gray surface can appear very light when surrounded by a black surface or dark when surrounded by a white surface. Some theories suggest that perceived surface brightness and color is represented explicitly by neural signals in cortical visual field maps; these neural signals are not initiated by the stimulus itself but rather by the contrast signals at the borders. Here, we use functional magnetic resonance imaging (fMRI) to search for such neural "filling-in" signals. Although we find the usual strong relationship between local contrast and fMRI response, when perceived brightness or color changes are induced by modulating a surrounding field, rather than the surface itself, we find there is no corresponding local modulation in primary visual cortex or other nearby retinotopic maps. Moreover, when we model the obtained fMRI responses, we find strong evidence for contributions of both local and long-range edge responses. We argue that such extended edge responses may be caused by neurons previously identified in neurophysiological studies as being brightness responsive, a characterization that may therefore need to be revised. We conclude that the visual field maps of human V1 and V2 do not contain filled-in, topographical representations of surface brightness and color.
引用
收藏
页码:3634 / 3641
页数:8
相关论文
共 71 条
[1]   THE TEMPORAL DYNAMICS OF BRIGHTNESS FILLING-IN [J].
ARRINGTON, KF .
VISION RESEARCH, 1994, 34 (24) :3371-3387
[2]   Mechanisms of contrast induction in heterogeneous displays [J].
Bindman, D ;
Chubb, C .
VISION RESEARCH, 2004, 44 (13) :1601-1613
[3]   Brightness assimilation in bullseye displays [J].
Bindman, D ;
Chubb, C .
VISION RESEARCH, 2004, 44 (03) :309-319
[4]   Oriented multiscale spatial filtering and contrast normalization: a parsimonious model of brightness induction in a continuum of stimuli including White, Howe and simultaneous brightness contrast [J].
Blakeslee, B ;
Pasieka, W ;
McCourt, ME .
VISION RESEARCH, 2005, 45 (05) :607-615
[5]   A unified theory of brightness contrast and assimilation incorporating oriented multiscale spatial filtering and contrast normalization [J].
Blakeslee, B ;
McCourt, ME .
VISION RESEARCH, 2004, 44 (21) :2483-2503
[6]   A multiscale spatial filtering account of the White effect, simultaneous brightness contrast and grating induction [J].
Blakeslee, B ;
McCourt, ME .
VISION RESEARCH, 1999, 39 (26) :4361-4377
[7]   Functional magnetic resonance imaging of brightness induction in the human visual cortex [J].
Boucard, CC ;
van Es, JJ ;
Maguire, RP ;
Cornelissen, FW .
NEUROREPORT, 2005, 16 (12) :1335-1338
[8]   The psychophysics toolbox [J].
Brainard, DH .
SPATIAL VISION, 1997, 10 (04) :433-436
[9]   SPATIAL INTERACTIONS IN COLOR-VISION DEPEND ON DISTANCES BETWEEN BOUNDARIES [J].
BRENNER, E ;
CORNELISSEN, FW .
NATURWISSENSCHAFTEN, 1991, 78 (02) :70-73
[10]  
Burnham K. P., 2002, MODEL SELECTION MULT