Enhancement of Visual Motion Detection Thresholds in Early Deaf People
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[1] Matthew W. G. Dye,et al. Do deaf individuals see better? , 2006, Trends in Cognitive Sciences.
[2] O. Pascalis,et al. Visual Advantage in Deaf Adults Linked to Retinal Changes , 2011, PloS one.
[3] P. Barone,et al. Visual activity predicts auditory recovery from deafness after adult cochlear implantation. , 2013, Brain : a journal of neurology.
[4] Helen J. Neville,et al. Attention to central and peripheral visual space in a movement detection task: an event-related potential and behavioral study. I. Normal hearing adults , 1987, Brain Research.
[5] J. Rauschecker,et al. Preserved Functional Specialization for Spatial Processing in the Middle Occipital Gyrus of the Early Blind , 2010, Neuron.
[6] Wing Hong Lore,et al. Central and peripheral visual processing in hearing and nonhearing individuals , 1991 .
[7] Jeremy D. Thorne,et al. Visual movement perception in deaf and hearing individuals , 2013, Advances in cognitive psychology.
[8] Craig J. Brozinsky,et al. Impact of Early Deafness and Early Exposure to Sign Language on the Cerebral Organization for Motion Processing , 2001, The Journal of Neuroscience.
[9] M. Ptito,et al. Compensatory plasticity and cross-modal reorganization following early visual deprivation , 2014, Neuroscience & Biobehavioral Reviews.
[10] Leslie G. Ungerleider. Two cortical visual systems , 1982 .
[11] H. Neville,et al. Altered Cross-Modal Processing in the Primary Auditory Cortex of Congenitally Deaf Adults: A Visual-Somatosensory fMRI Study with a Double-Flash Illusion , 2012, The Journal of Neuroscience.
[12] Karen R. Dobkins,et al. Visual Field Asymmetries for Motion Processing in Deaf and Hearing Signers , 2002, Brain and Cognition.
[13] R. Zatorre,et al. A Functional Neuroimaging Study of Sound Localization: Visual Cortex Activity Predicts Performance in Early-Blind Individuals , 2005, PLoS biology.
[14] Manabu Honda,et al. Cross-modal integration and plastic changes revealed by lip movement, random-dot motion and sign languages in the hearing and deaf. , 2005, Cerebral cortex.
[15] Eric Truy,et al. Visual speech circuits in profound acquired deafness: a possible role for latent multimodal connectivity. , 2007, Brain : a journal of neurology.
[16] E. Macaluso,et al. A Common Cortical Substrate Activated by Horizontal and Vertical Sound Movement in the Human Brain , 2002, Current Biology.
[17] JH Maunsell,et al. Does primate motion perception depend on the magnocellular pathway? , 1991, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[18] D. Bavelier,et al. Cross-modal plasticity: where and how? , 2002, Nature Reviews Neuroscience.
[19] O. Pascalis,et al. Deaf and hearing children: a comparison of peripheral vision development. , 2011, Developmental science.
[20] C Kaernbach,et al. Simple adaptive testing with the weighted up-down method , 1991, Perception & psychophysics.
[21] Ione Fine,et al. Visual stimuli activate auditory cortex in the deaf , 2001, Nature Neuroscience.
[22] Richard S. J. Frackowiak,et al. Cross-Modal Plasticity Underpins Language Recovery after Cochlear Implantation , 2001, Neuron.
[23] Ione Fine,et al. Comparing the Effects of Auditory Deprivation and Sign Language within the Auditory and Visual Cortex , 2005, Journal of Cognitive Neuroscience.
[24] Helen J. Neville,et al. Neuroplasticity as a Double-edged Sword: Deaf Enhancements and Dyslexic Deficits in Motion Processing , 2006, Journal of Cognitive Neuroscience.
[25] Karen R. Dobkins,et al. Effects of attention and laterality on motion and orientation discrimination in deaf signers , 2013, Brain and Cognition.
[26] Steven A Hillyard,et al. Auditory deprivation affects processing of motion, but not color. , 2002, Brain research. Cognitive brain research.
[27] Matthew W. G. Dye,et al. Attentional enhancements and deficits in deaf populations: an integrative review. , 2010, Restorative neurology and neuroscience.
[28] Helen J. Neville,et al. Attention to central and peripheral visual space in a movement detection task: an event-related potential and behavioral study. II. Congenitally deaf adults , 1987, Brain Research.
[29] Jack Katz editor-in-chief. Handbook of clinical audiology , 2015 .
[30] Robert J. Zatorre,et al. Reorganization of Auditory Cortex in Early-deaf People: Functional Connectivity and Relationship to Hearing Aid Use , 2015, Journal of Cognitive Neuroscience.
[31] J. Katz,et al. Handbook of clinical audiology , 1978 .
[32] R. Zatorre,et al. Organization and Reorganization of Sensory-Deprived Cortex , 2012, Current Biology.
[33] Daphne Bavelier,et al. Motion velocity thresholds in deaf signers: changes in lateralization but not in overall sensitivity. , 2004, Brain research. Cognitive brain research.
[34] J. Rauschecker,et al. Perception of Sound-Source Motion by the Human Brain , 2002, Neuron.
[35] Karen R. Dobkins,et al. The Effects of Spatial Attention on Motion Processing in Deaf Signers, Hearing Signers, and Hearing Nonsigners , 2002, Brain and Cognition.
[36] Hyejin Kang,et al. Preoperative differences of cerebral metabolism relate to the outcome of cochlear implants in congenitally deaf children , 2005, Hearing Research.
[37] Katrin Krumbholz,et al. Hierarchical processing of sound location and motion in the human brainstem and planum temporale , 2005, The European journal of neuroscience.
[38] S. Lomber,et al. Crossmodal reorganization in the early deaf switches sensory, but not behavioral roles of auditory cortex , 2011, Proceedings of the National Academy of Sciences.
[39] K. Dobkins,et al. Visual contrast sensitivity in deaf versus hearing populations: exploring the perceptual consequences of auditory deprivation and experience with a visual language. , 2001, Brain research. Cognitive brain research.
[40] S. Lomber,et al. Cross-modal plasticity in specific auditory cortices underlies visual compensations in the deaf , 2010, Nature Neuroscience.
[41] M. Lassonde,et al. Cross-modal plasticity for the spatial processing of sounds in visually deprived subjects , 2008, Experimental Brain Research.
[42] R. Mansfield,et al. Analysis of visual behavior , 1982 .
[43] Franco Lepore,et al. Differential occipital responses in early- and late-blind individuals during a sound-source discrimination task , 2008, NeuroImage.
[44] Karen R. Dobkins,et al. Left-Hemisphere Dominance for Motion Processing in Deaf Signers , 1999 .
[45] M. Giard,et al. Changes in Early Cortical Visual Processing Predict Enhanced Reactivity in Deaf Individuals , 2011, PloS one.
[46] Alan C. Evans,et al. Speech-like cerebral activity in profoundly deaf people processing signed languages: implications for the neural basis of human language. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[47] Á. Pascual-Leone,et al. The metamodal organization of the brain. , 2001, Progress in brain research.
[48] Colline Poirier,et al. Auditory motion perception activates visual motion areas in early blind subjects , 2006, NeuroImage.
[49] D. Bavelier,et al. Changes in the Spatial Distribution of Visual Attention after Early Deafness , 2002, Journal of Cognitive Neuroscience.
[50] Franco Lepore,et al. Adaptation to sensory loss. , 2011, Wiley interdisciplinary reviews. Cognitive science.
[51] Daphne Bavelier,et al. I see where you're hearing: how cross-modal plasticity may exploit homologous brain structures , 2010, Nature Neuroscience.