Cortical Balance Between ON and OFF Visual Responses Is Modulated by the Spatial Properties of the Visual Stimulus
暂无分享,去创建一个
Qasim Zaidi | Harvey A Swadlow | Jose-Manuel Alonso | Jianzhong Jin | Jens Kremkow | Reza Lashgari | J. Alonso | H. Swadlow | Jianzhong Jin | Q. Zaidi | Yulia Bereshpolova | J. Kremkow | Xiaobing Li | R. Lashgari | Michael Jansen | Yulia Bereshpolova | Xiaobing Li | Michael Jansen
[1] Ali Borji,et al. Multiple-target tracking in human and machine vision , 2020, PLoS Comput. Biol..
[2] S. Ling,et al. Luminance Potentiates Human Visuocortical Responses. , 2019, Journal of neurophysiology.
[3] J. Alonso,et al. Amblyopia Affects the ON Visual Pathway More than the OFF , 2019, The Journal of Neuroscience.
[4] Jose-Manuel Alonso,et al. Functional Specialization of ON and OFF Cortical Pathways for Global-Slow and Local-Fast Vision. , 2019, Cell reports.
[5] J. Trachtenberg,et al. Local tuning biases in mouse primary visual cortex. , 2018, Journal of neurophysiology.
[6] J. Alonso,et al. Seeing with a biased visual cortical map. , 2018, Journal of neurophysiology.
[7] M. Scanziani,et al. Cortical direction selectivity emerges at convergence of thalamic synapses , 2018, Nature.
[8] Madineh Sedigh-Sarvestani,et al. Inhibition in Simple Cell Receptive Fields Is Broad and OFF-Subregion Biased , 2017, The Journal of Neuroscience.
[9] J. Alonso,et al. Neuronal mechanisms underlying differences in spatial resolution between darks and lights in human vision , 2017, Journal of vision.
[10] Madineh Sedigh-Sarvestani,et al. Intracellular, In Vivo, Dynamics of Thalamocortical Synapses in Visual Cortex , 2017, The Journal of Neuroscience.
[11] D. Alais,et al. Orientation discrimination requires coactivation of on- and off-dominated visual channels. , 2016, Journal of vision.
[12] J. Alonso,et al. PRINCIPLES UNDERLYING SENSORY MAP TOPOGRAPHY IN PRIMARY VISUAL CORTEX , 2016, Nature.
[13] David Fitzpatrick,et al. Topology of ON and OFF inputs in visual cortex enables an invariant columnar architecture , 2016, Nature.
[14] Gregor Schöner,et al. Temporal Asymmetry in Dark–Bright Processing Initiates Propagating Activity across Primary Visual Cortex , 2016, The Journal of Neuroscience.
[15] David Fitzpatrick,et al. Modular Representation of Luminance Polarity in the Superficial Layers of Primary Visual Cortex , 2015, Neuron.
[16] Tsai-Wen Chen,et al. Neuronal Representation of Ultraviolet Visual Stimuli in Mouse Primary Visual Cortex , 2015, Scientific Reports.
[17] Emily A. Cooper,et al. Predicting Cortical Dark/Bright Asymmetries from Natural Image Statistics and Early Visual Transforms , 2015, PLoS Comput. Biol..
[18] J. Alonso,et al. Chromatic and Achromatic Spatial Resolution of Local Field Potentials in Awake Cortex , 2014, Cerebral cortex.
[19] J. Alonso,et al. COLUMNAR ORGANIZATION OF SPATIAL PHASE IN VISUAL CORTEX , 2014, Nature Neuroscience.
[20] Robert Kretz,et al. On the relation between receptive field structure and stimulus selectivity in the tree shrew primary visual cortex. , 2014, Cerebral cortex.
[21] Yves Frégnac,et al. Hidden Complexity of Synaptic Receptive Fields in Cat V1 , 2014, The Journal of Neuroscience.
[22] J. Alonso,et al. Neuronal and Perceptual Differences in the Temporal Processing of Darks and Lights , 2014, Neuron.
[23] Haishan Yao,et al. Contrast‐dependent OFF‐dominance in cat primary visual cortex facilitates discrimination of stimuli with natural contrast statistics , 2014, The European journal of neuroscience.
[24] Qasim Zaidi,et al. Neuronal nonlinearity explains greater visual spatial resolution for darks than lights , 2014, Proceedings of the National Academy of Sciences.
[25] Khaled J. Hammad,et al. Visualization of an annular viscoplastic jet , 2014, J. Vis..
[26] Harvey A Swadlow,et al. Response Properties of Local Field Potentials and Neighboring Single Neurons in Awake Primary Visual Cortex , 2012, The Journal of Neuroscience.
[27] Diego Contreras,et al. Long-Range Parallel Processing and Local Recurrent Activity in the Visual Cortex of the Mouse , 2012, The Journal of Neuroscience.
[28] Jason M Samonds,et al. Relative luminance and binocular disparity preferences are correlated in macaque primary visual cortex, matching natural scene statistics , 2012, Proceedings of the National Academy of Sciences.
[29] Emily A. Cooper,et al. Blur and Disparity Are Complementary Cues to Depth , 2012, Current Biology.
[30] Qasim Zaidi,et al. Darks Are Processed Faster Than Lights , 2011, The Journal of Neuroscience.
[31] Peter König,et al. Independent encoding of grating motion across stationary feature maps in primary visual cortex visualized with voltage-sensitive dye imaging , 2011, NeuroImage.
[32] J. Alonso,et al. Population receptive fields of ON and OFF thalamic inputs to an orientation column in visual cortex , 2011, Nature Neuroscience.
[33] Alexander Borst,et al. ON and OFF pathways in Drosophila motion vision , 2010, Nature.
[34] R. Shapley,et al. Generation of Black-Dominant Responses in V1 Cortex , 2010, The Journal of Neuroscience.
[35] Charles P. Ratliff,et al. Retina is structured to process an excess of darkness in natural scenes , 2010, Proceedings of the National Academy of Sciences.
[36] R. Shapley,et al. “Black” Responses Dominate Macaque Primary Visual Cortex V1 , 2009, The Journal of Neuroscience.
[37] Gerald Westheimer,et al. Illusions in the spatial sense of the eye: Geometrical–optical illusions and the neural representation of space , 2008, Vision Research.
[38] Harvey A Swadlow,et al. Task difficulty modulates the activity of specific neuronal populations in primary visual cortex , 2008, Nature Neuroscience.
[39] W. Geisler. Visual perception and the statistical properties of natural scenes. , 2008, Annual review of psychology.
[40] B. Dreher,et al. Complex cells increase their phase sensitivity at low contrasts and following adaptation. , 2007, Journal of neurophysiology.
[41] R. Shapley,et al. A Dynamic Nonlinearity and Spatial Phase Specificity in Macaque V1 Neurons , 2007, The Journal of Neuroscience.
[42] A. Buchner,et al. Text – background polarity affects performance irrespective of ambient illumination and colour contrast , 2007, Ergonomics.
[43] E. Adelson,et al. Image statistics and the perception of surface qualities , 2007, Nature.
[44] Eero P. Simoncelli,et al. Spike-triggered neural characterization. , 2006, Journal of vision.
[45] R. Shapley,et al. Effect of stimulus size on the dynamics of orientation selectivity in Macaque V1. , 2005, Journal of neurophysiology.
[46] Eero P. Simoncelli,et al. Spatiotemporal Elements of Macaque V1 Receptive Fields , 2005, Neuron.
[47] Harvey A Swadlow,et al. A multi-channel, implantable microdrive system for use with sharp, ultra-fine "Reitboeck" microelectrodes. , 2005, Journal of neurophysiology.
[48] Y. Dan,et al. Stimulation of non‐classical receptive field enhances orientation selectivity in the cat , 2005, The Journal of physiology.
[49] J. Touryan,et al. Spatial Structure of Complex Cell Receptive Fields Measured with Natural Images , 2005, Neuron.
[50] M. Landy,et al. A visual mechanism tuned to black , 2004, Vision Research.
[51] Nicolas P Cottaris,et al. Artifacts in spatiochromatic stimuli due to variations in preretinal absorption and axial chromatic aberration: implications for color physiology. , 2003, Journal of the Optical Society of America. A, Optics, image science, and vision.
[52] J. B. Demb,et al. Different Circuits for ON and OFF Retinal Ganglion Cells Cause Different Contrast Sensitivities , 2003, The Journal of Neuroscience.
[53] Amir Shmuel,et al. The spatial pattern of response magnitude and selectivity for orientation and direction in cat visual cortex. , 2003, Cerebral cortex.
[54] R. Shapley,et al. Orientation Selectivity in Macaque V1: Diversity and Laminar Dependence , 2002, The Journal of Neuroscience.
[55] D. Ringach. Spatial structure and symmetry of simple-cell receptive fields in macaque primary visual cortex. , 2002, Journal of neurophysiology.
[56] E. Chichilnisky,et al. Functional Asymmetries in ON and OFF Ganglion Cells of Primate Retina , 2002, The Journal of Neuroscience.
[57] R. Reid,et al. Rules of Connectivity between Geniculate Cells and Simple Cells in Cat Primary Visual Cortex , 2001, The Journal of Neuroscience.
[58] Charles Chubb,et al. Variance of high contrast textures is sensed using negative half-wave rectification , 2000, Vision Research.
[59] Charles Chubb,et al. Texture luminance judgments are approximately veridical , 2000, Vision Research.
[60] U. Eysel,et al. Structure and dynamics of receptive fields in the visual cortex of the cat (area 18) and the influence of GABAergic inhibition , 1998, The European journal of neuroscience.
[61] J. Alonso,et al. Functional connectivity between simple cells and complex cells in cat striate cortex , 1998, Nature Neuroscience.
[62] Guillermo Sapiro,et al. A subspace reverse-correlation technique for the study of visual neurons , 1997, Vision Research.
[63] Christopher W. Tyler,et al. Nonlinearities of near-threshold contrast transduction , 1997, Vision Research.
[64] R. Reid,et al. Specificity of monosynaptic connections from thalamus to visual cortex , 1995, Nature.
[65] M. Landy,et al. Histogram contrast analysis and the visual segregation of IID textures. , 1994, Journal of the Optical Society of America. A, Optics, image science, and vision.
[66] Qasim Zaidi,et al. Visual mechanisms that signal the direction of color changes , 1993, Vision Research.
[67] I. Ohzawa,et al. Spatiotemporal organization of simple-cell receptive fields in the cat's striate cortex. II. Linearity of temporal and spatial summation. , 1993, Journal of neurophysiology.
[68] I. Ohzawa,et al. Spatiotemporal organization of simple-cell receptive fields in the cat's striate cortex. I. General characteristics and postnatal development. , 1993, Journal of neurophysiology.
[69] C W Tyler,et al. Different spatial tunings for ON and OFF pathway stimulation , 1992, Ophthalmic & physiological optics : the journal of the British College of Ophthalmic Opticians.
[70] A. B. Bonds,et al. Classifying simple and complex cells on the basis of response modulation , 1991, Vision Research.
[71] J. Pokorny,et al. Sawtooth contrast sensitivity: Decrements have the edge , 1989, Vision Research.
[72] L. Palmer,et al. Contribution of linear spatiotemporal receptive field structure to velocity selectivity of simple cells in area 17 of cat , 1989, Vision Research.
[73] M P Stryker,et al. Segregation of ON and OFF afferents to ferret visual cortex. , 1988, Journal of neurophysiology.
[74] V Zemon,et al. Asymmetries in ON and OFF visual pathways of humans revealed using contrast-evoked cortical potentials , 1988, Visual Neuroscience.
[75] R. Shapley,et al. Linear mechanisms of directional selectivity in simple cells of cat striate cortex. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[76] J. P. Jones,et al. An evaluation of the two-dimensional Gabor filter model of simple receptive fields in cat striate cortex. , 1987, Journal of neurophysiology.
[77] John F. Canny,et al. A Computational Approach to Edge Detection , 1986, IEEE Transactions on Pattern Analysis and Machine Intelligence.
[78] E H Adelson,et al. Spatiotemporal energy models for the perception of motion. , 1985, Journal of the Optical Society of America. A, Optics and image science.
[79] P. Lennie,et al. Chromatic mechanisms in lateral geniculate nucleus of macaque. , 1984, The Journal of physiology.
[80] S. Levay,et al. Segregation of on- and off-center afferents in mink visual cortex. , 1984, Proceedings of the National Academy of Sciences of the United States of America.
[81] V. Hopkin. Book reviewErgonomic aspects of visual display terminals: Edited by E. Grandjean, E. Vigliani Taylor and Francis Ltd, 1980, pp x + 300, £18 , 1981 .
[82] B. Boycott,et al. Morphology and mosaic of on- and off-beta cells in the cat retina and some functional considerations , 1981, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[83] J. Movshon,et al. Spatial summation in the receptive fields of simple cells in the cat's striate cortex. , 1978, The Journal of physiology.
[84] J. Movshon,et al. Receptive field organization of complex cells in the cat's striate cortex. , 1978, The Journal of physiology.
[85] S. Gilman,et al. The notebooks of Leonardo da Vinci , 1978, Medical History.
[86] D. Hubel,et al. Receptive fields and functional architecture of monkey striate cortex , 1968, The Journal of physiology.
[87] A. Short,et al. Decremental and incremental visual thresholds , 1966, The Journal of physiology.
[88] H R BLACKWELL,et al. Contrast thresholds of the human eye. , 1946, Journal of the Optical Society of America.
[89] D. Heller,et al. Beobachtungen zur deutschen Übersetzung des 'Dialogo sopra i due massimi sistemi del mondo' , 2019 .
[90] Chun-I Yeh,et al. On and off domains of geniculate afferents in cat primary visual cortex , 2008, Nature Neuroscience.
[91] V Zemon,et al. Contrast-dependent responses in the human visual system: childhood through adulthood. , 1995, The International journal of neuroscience.
[92] D. Hubel,et al. Receptive fields, binocular interaction and functional architecture in the cat's visual cortex , 1962, The Journal of physiology.