Bayesian quantification of sensory reweighting in a familial bilateral vestibular disorder (DFNA9).
暂无分享,去创建一个
W Pieter Medendorp | Luc P J Selen | Bart B. G. T. Alberts | L. Selen | W. Medendorp | W. Verhagen | R. Pennings | Wim I M Verhagen | Bart B G T Alberts | Ronald J E Pennings
[1] K. Hess,et al. Disorders of the vestibulo-ocular reflex producing oscillopsia and mechanisms compensating for loss of labyrinthine function. , 1977, Brain : a journal of neurology.
[2] P. Wenderoth,et al. The effect of variation of frame shape on the angular function of the rod-and-frame illusion , 1972 .
[3] Konrad P. Körding,et al. What Silly Postures Tell Us about the Brain , 2012, Front. Neurosci..
[4] M. Bikson,et al. Polarity-Dependent Misperception of Subjective Visual Vertical during and after Transcranial Direct Current Stimulation (tDCS) , 2016, PloS one.
[5] C. Foster,et al. Vestibular rehabilitation. , 1994, Bailliere's clinical neurology.
[6] C. Cremers,et al. A common ancestor for COCH related cochleovestibular (DFNA9) patients in Belgium and The Netherlands bearing the P51S mutation , 2001, Journal of medical genetics.
[7] Vallabh E Das,et al. Recovery of dynamic visual acuity in unilateral vestibular hypofunction. , 2003, Archives of otolaryngology--head & neck surgery.
[8] F A Wichmann,et al. Ning for Helpful Comments and Suggestions. This Paper Benefited Con- Siderably from Conscientious Peer Review, and We Thank Our Reviewers the Psychometric Function: I. Fitting, Sampling, and Goodness of Fit , 2001 .
[9] Hermann Aubert,et al. Eine scheinbare bedeutende Drehung von Objecten bei Neigung des Kopfes nach rechts oder links , 1861, Archiv für pathologische Anatomie und Physiologie und für klinische Medicin.
[10] A. John Van Opstal,et al. The effect of head roll on perceived auditory zenith , 2011, Experimental Brain Research.
[11] Xue-Xin Wei,et al. A Bayesian observer model constrained by efficient coding can explain 'anti-Bayesian' percepts , 2015, Nature Neuroscience.
[12] M. De Vrijer,et al. Accuracy-precision trade-off in visual orientation constancy. , 2009, Journal of vision.
[13] H. A. Witkin,et al. Studies in space orientation; further experiments on perception of the upright with displaced visual fields. , 1948, Journal of experimental psychology.
[14] Patrick L M Huygen,et al. Optokinetic response in patients with vestibular areflexia. , 2011, Journal of vestibular research : equilibrium & orientation.
[15] L. Pinneo. On noise in the nervous system. , 1966, Psychological review.
[16] J. Lackner,et al. Vestibular, proprioceptive, and haptic contributions to spatial orientation. , 2005, Annual review of psychology.
[17] Thomas Bauermann,et al. Evidence for cortical visual substitution of chronic bilateral vestibular failure (an fMRI study). , 2007, Brain : a journal of neurology.
[18] Nicole David,et al. The right temporoparietal junction plays a causal role in maintaining the internal representation of verticality. , 2015, Journal of neurophysiology.
[19] Kathleen E. Cullen,et al. The neural encoding of self-generated and externally applied movement: implications for the perception of self-motion and spatial memory , 2014, Front. Integr. Neurosci..
[20] I S Curthoys,et al. Vestibular compensation and substitution. , 2000, Current opinion in neurology.
[21] Paul Dassonville,et al. Visuospatial contextual processing in the parietal cortex: An fMRI investigation of the induced Roelofs effect , 2008, NeuroImage.
[22] A. Paillard,et al. Influence of multisensory graviceptive information on the apparent zenith , 2011, Experimental Brain Research.
[23] I S Curthoys,et al. Head impulse test in unilateral vestibular loss , 2008, Neurology.
[24] H. Kiyama,et al. Molecular mechanisms of vestibular compensation in the central vestibular system--review. , 1998, Acta oto-laryngologica. Supplementum.
[25] H Mittelstaedt,et al. Evidence of somatic graviception from new and classical investigations. , 1995, Acta oto-laryngologica. Supplementum.
[26] Janine R Brodovsky,et al. Vestibular Rehabilitation for Unilateral Peripheral Vestibular Dysfunction , 2013, Physical Therapy.
[27] Peter Wenderoth,et al. Theangular function of arod-and-frame illusion , 1971 .
[28] D. Angelaki,et al. Gravity orientation tuning in macaque anterior thalamus , 2016, Nature Neuroscience.
[29] Mohsen Jamali,et al. Neuronal detection thresholds during vestibular compensation: contributions of response variability and sensory substitution , 2014, The Journal of physiology.
[30] Leonard Matin,et al. Visually perceived vertical (VPV): induced changes in orientation by 1-line and 2-line roll-tilted and pitched visual fields , 2005, Vision Research.
[31] J. Goldberg,et al. Physiology of peripheral neurons innervating otolith organs of the squirrel monkey. I. Response to static tilts and to long-duration centrifugal force. , 1976, Journal of neurophysiology.
[32] F. Mast,et al. Mental transformation abilities in patients with unilateral and bilateral vestibular loss , 2011, Experimental Brain Research.
[33] W Pieter Medendorp,et al. Sensory substitution in bilateral vestibular a-reflexic patients , 2015, Physiological reports.
[34] W P Medendorp,et al. Fusion of visual and vestibular tilt cues in the perception of visual vertical. , 2009, Journal of neurophysiology.
[35] Nils Guinand,et al. Restoring Visual Acuity in Dynamic Conditions with a Vestibular Implant , 2016, Front. Neurosci..
[36] Eero P. Simoncelli,et al. Cardinal rules: Visual orientation perception reflects knowledge of environmental statistics , 2011, Nature Neuroscience.
[37] Klaus Jahn,et al. Current concepts and future approaches to vestibular rehabilitation , 2016, Journal of Neurology.
[38] J. Jeka,et al. Perspectives on Aging Vestibular Function , 2016, Front. Neurol..
[39] A M Bronstein,et al. The Interaction of Otolith and Proprioceptive Information in the Perception of Verticality: The Effects of Labyrinthine and CNS Disease , 1999, Annals of the New York Academy of Sciences.
[40] C. Cremers,et al. Vestibular Deterioration Precedes Hearing Deterioration in the P51S COCH Mutation (DFNA9): An Analysis in 74 Mutation Carriers , 2005, Otology & neurotology : official publication of the American Otological Society, American Neurotology Society [and] European Academy of Otology and Neurotology.
[41] D Purves,et al. The distribution of oriented contours in the real world. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[42] L. Matin,et al. Multimodal basis for egocentric spatial localization and orientation. , 1995, Journal of vestibular research : equilibrium & orientation.
[43] J. Vercher,et al. Perception of the vertical with a head-mounted visual frame during head tilt , 2004, Ergonomics.
[44] B. Yates,et al. Compensation Following Bilateral Vestibular Damage , 2011, Front. Neur..
[45] Takeshi Kasai,et al. Eye-head coordination in labyrinthine-defective human beings , 1978, Brain Research.
[46] D. Angelaki,et al. Basic and Clinical Aspects of Vertigo and Dizziness How Vestibular Neurons Solve the Tilt/translation Ambiguity Comparison of Brainstem, Cerebellum, and Thalamus , 2022 .
[47] F. Müller,et al. Verticality perception during and after galvanic vestibular stimulation , 2014, Neuroscience Letters.
[48] Benjamin D. Lester,et al. The Role of the Right Superior Parietal Lobule in Processing Visual Context for the Establishment of the Egocentric Reference Frame , 2014, Journal of Cognitive Neuroscience.
[49] Kathleen E Cullen,et al. Neural Correlates of Sensory Substitution in Vestibular Pathways following Complete Vestibular Loss , 2012, The Journal of Neuroscience.
[50] Daniel M Merfeld,et al. Human perceptual overestimation of whole body roll tilt in hypergravity. , 2015, Journal of neurophysiology.
[51] D Straumann,et al. Roll-dependent modulation of the subjective visual vertical: contributions of head- and trunk-based signals. , 2010, Journal of neurophysiology.
[52] Supramodal effects of galvanic vestibular stimulation on the subjective vertical , 2001, Neuroreport.
[53] G Van Camp,et al. Familial progressive vestibulocochlear dysfunction caused by a COCH mutation (DFNA9). , 2000, Archives of neurology.
[54] J. D. Hood,et al. The cervico-ocular reflex in normal subjects and patients with absent vestibular function , 1986, Brain Research.
[55] Jeff Bagust,et al. Assessment of verticality perception by a rod-and-frame test: preliminary observations on the use of a computer monitor and video eye glasses. , 2005, Archives of physical medicine and rehabilitation.
[56] J. H. van Hateren,et al. Modelling the Power Spectra of Natural Images: Statistics and Information , 1996, Vision Research.
[57] D. Angelaki,et al. Vestibular system: the many facets of a multimodal sense. , 2008, Annual review of neuroscience.
[58] M. Guerraz,et al. Head Orientation Involvement in Assessment of the Subjective Vertical during Whole Body Tilt , 1998, Perceptual and motor skills.
[59] W. Pieter Medendorp,et al. A Bayesian Account of Visual–Vestibular Interactions in the Rod-and-Frame Task , 2016, eNeuro.
[60] H. Mittelstaedt,et al. Somatic graviception , 1996, Biological Psychology.
[61] A. Bronstein,et al. Visually and posturally mediated tilt illusion in Parkinson's disease and in labyrinthine defective subjects , 1996, Neurology.
[62] H Mittelstaedt,et al. Somatic versus Vestibular Gravity Reception in Man , 1992, Annals of the New York Academy of Sciences.
[63] David J. Sharp,et al. Visual and proprioceptive interaction in patients with bilateral vestibular loss☆ , 2014, NeuroImage: Clinical.
[64] A. Bronstein,et al. Visual vertigo: symptom assessment, spatial orientation and postural control. , 2001, Brain : a journal of neurology.
[65] W. Verhagen,et al. Compensation of total loss of vestibulo-ocular reflex by enhanced optokinetic response. , 1989, Acta oto-laryngologica. Supplementum.
[66] Daniel M. Merfeld,et al. Signal detection theory and vestibular thresholds: I. Basic theory and practical considerations , 2011, Experimental Brain Research.
[67] K. Popov,et al. Postural responses to vibration of neck muscles in patients with unilateral vestibular lesions , 1996, Neuroscience Letters.
[68] Heinrich H. Bülthoff,et al. A Bayesian model of the disambiguation of gravitoinertial force by visual cues , 2007, Experimental Brain Research.
[69] W. Verhagen,et al. Cervico-ocular reflex enhancement in labyrinthine-defective and normal subjects , 2004, Experimental Brain Research.
[70] W Pieter Medendorp,et al. Multisensory Processing in Spatial Orientation: An Inverse Probabilistic Approach , 2011, The Journal of Neuroscience.
[71] 박범,et al. Sensory substitution 을 적용한 인터페이스 설계 , 2010 .
[72] T. Brandt,et al. The Vestibular Cortex: Its Locations, Functions, and Disorders , 1999, Annals of the New York Academy of Sciences.
[73] A. Devèze,et al. Vestibular compensation and vestibular rehabilitation. Current concepts and new trends , 2014, Neurophysiologie Clinique/Clinical Neurophysiology.
[74] L. Matin,et al. The Rod-and-Frame Effect: The Whole is Less than the Sum of its Parts , 2005, Perception.
[75] H. Mittelstaedt. A new solution to the problem of the subjective vertical , 1983, Naturwissenschaften.
[76] Christophe Lopez,et al. Changes of visual vertical perception: A long-term sign of unilateral and bilateral vestibular loss , 2007, Neuropsychologia.
[77] W P Medendorp,et al. Shared computational mechanism for tilt compensation accounts for biased verticality percepts in motion and pattern vision. , 2008, Journal of neurophysiology.
[78] Saumil N Merchant,et al. Cochlin immunostaining of inner ear pathologic deposits and proteomic analysis in DFNA9 deafness and vestibular dysfunction. , 2006, Human molecular genetics.
[79] Kathleen E Cullen,et al. Neural substrates underlying vestibular compensation: contribution of peripheral versus central processing. , 2009, Journal of vestibular research : equilibrium & orientation.
[80] C. Cremers,et al. [From gene to disease; a progressive cochlear-vestibular dysfunction with onset in middle-age (DFNA9)]. , 2005, Nederlands tijdschrift voor geneeskunde.
[81] Richard F. Lewis,et al. Advances in the Diagnosis and Treatment of Vestibular Disorders: Psychophysics and Prosthetics , 2015, The Journal of Neuroscience.