Neural Sources Underlying Visual Word Form Processing as Revealed by Steady State Visual Evoked Potentials (SSVEP)
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Anthony M. Norcia | Vladimir Y. Vildavski | Blair Kaneshiro | Bruce D. McCandliss | Forea Wang | Alexandra Yakovleva | Strauber Cb | L Hasak | Nguyen Qth
[1] Snehanshu Saha,et al. Twofold classification of motor imagery using common spatial pattern , 2014, 2014 International Conference on Contemporary Computing and Informatics (IC3I).
[2] S Lehéricy,et al. The visual word form area: spatial and temporal characterization of an initial stage of reading in normal subjects and posterior split-brain patients. , 2000, Brain : a journal of neurology.
[3] C. Price,et al. The Interactive Account of ventral occipitotemporal contributions to reading , 2011, Trends in Cognitive Sciences.
[4] Justin M. Ales,et al. Disparity-Tuned Population Responses from Human Visual Cortex , 2011, The Journal of Neuroscience.
[5] Brian A. Wandell,et al. Position sensitivity in the visual word form area , 2012, Proceedings of the National Academy of Sciences.
[6] Bruno Rossion,et al. A rapid, objective and implicit measure of visual quantity discrimination , 2018, Neuropsychologia.
[7] D. Lehmann,et al. Reference-free identification of components of checkerboard-evoked multichannel potential fields. , 1980, Electroencephalography and clinical neurophysiology.
[8] Bruno Rossion,et al. A robust index of lexical representation in the left occipito-temporal cortex as evidenced by EEG responses to fast periodic visual stimulation , 2015, Neuropsychologia.
[9] F. Hoeft,et al. Integrating MRI brain imaging studies of pre-reading children with current theories of developmental dyslexia: a review and quantitative meta-analysis , 2016, Current Opinion in Behavioral Sciences.
[10] S. Dehaene,et al. How Learning to Read Changes the Cortical Networks for Vision and Language , 2010, Science.
[11] Michael X Cohen,et al. Comparison of linear spatial filters for identifying oscillatory activity in multichannel data , 2016, Journal of Neuroscience Methods.
[12] N. Kanwisher,et al. Visual word processing and experiential origins of functional selectivity in human extrastriate cortex , 2007, Proceedings of the National Academy of Sciences.
[13] D. Howard,et al. Synthesis of a Vocal Sound from the 3,000 year old Mummy, Nesyamun ‘True of Voice’ , 2020, Scientific Reports.
[14] Jonathan Grainger,et al. The Time Course of Orthographic and Phonological Code Activation , 2006 .
[15] Daniel Brandeis,et al. Coarse neural tuning for print peaks when children learn to read , 2006, NeuroImage.
[16] A. Content,et al. BACS: The Brussels Artificial Character Sets for studies in cognitive psychology and neuroscience , 2017, Behavior Research Methods.
[17] Bradley C. Lega,et al. Feed-forward, feed-back, and distributed feature representation during visual word recognition revealed by human intracranial neurophysiology , 2020 .
[18] Y. Benjamini,et al. THE CONTROL OF THE FALSE DISCOVERY RATE IN MULTIPLE TESTING UNDER DEPENDENCY , 2001 .
[19] Friedemann Pulvermüller,et al. [Q:] When Would You Prefer a SOSSAGE to a SAUSAGE? [A:] At about 100 msec. ERP Correlates of Orthographic Typicality and Lexicality in Written Word Recognition , 2006, Journal of Cognitive Neuroscience.
[20] Régine Kolinsky,et al. Impact of literacy on the functional connectivity of vision and language related networks , 2020, NeuroImage.
[21] S. Quadflieg,et al. A fast and implicit measure of semantic categorisation using steady state visual evoked potentials , 2017, Neuropsychologia.
[22] Michael Henry Tessler,et al. Privileged Functional Connectivity between the Visual Word Form Area and the Language System , 2017, The Journal of Neuroscience.
[23] Bruno Rossion,et al. Early lateralization and orientation tuning for face, word, and object processing in the visual cortex , 2003, NeuroImage.
[24] A. Norcia,et al. Dynamics of Contrast Decrement and Increment Responses in Human Visual Cortex , 2020, Translational vision science & technology.
[25] Cathy J. Price,et al. Dissociating frontal regions that co-lateralize with different ventral occipitotemporal regions during word processing☆ , 2013, Brain and Language.
[26] A. Norcia,et al. An objective index of individual face discrimination in the right occipito-temporal cortex by means of fast periodic oddball stimulation , 2014, Neuropsychologia.
[27] Bruno Rossion,et al. Category Specificity in Early Perception: Face and Word N170 Responses Differ in Both Lateralization and Habituation Properties , 2008, Frontiers in human neuroscience.
[28] Stanislas Dehaene,et al. The emergence of the visual word form: Longitudinal evolution of category-specific ventral visual areas during reading acquisition , 2018, PLoS biology.
[29] Régine Kolinsky,et al. Illiterate to literate: behavioural and cerebral changes induced by reading acquisition , 2015, Nature Reviews Neuroscience.
[30] Bruce D. McCandliss,et al. The visual word form area: expertise for reading in the fusiform gyrus , 2003, Trends in Cognitive Sciences.
[31] S. Dehaene,et al. Language-specific tuning of visual cortex? Functional properties of the Visual Word Form Area. , 2002, Brain : a journal of neurology.
[32] B. Rossion,et al. Developmental changes in neural letter‐selectivity: A 1‐year follow‐up of beginning readers , 2020, Developmental science.
[33] T. Givón,et al. Brain Plasticity in Learning Visual Words , 1997, Cognitive Psychology.
[34] Manuel Carreiras,et al. Converging evidence for functional and structural segregation within the left ventral occipitotemporal cortex in reading , 2018, Proceedings of the National Academy of Sciences.
[35] Christine Schiltz,et al. The neural signature of numerosity by separating numerical and continuous magnitude extraction in visual cortex with frequency-tagged EEG , 2020, Proceedings of the National Academy of Sciences.
[36] A. Mechelli,et al. The Impact of Second Language Learning on Semantic and Nonsemantic First Language Reading , 2009, Cerebral cortex.
[37] Arne D. Ekstrom,et al. Category Selectivity for Face and Scene Recognition in Human Medial Parietal Cortex , 2020, Current Biology.
[38] Bruno Rossion,et al. Selective visual representation of letters and words in the left ventral occipito-temporal cortex with intracerebral recordings , 2018, Proceedings of the National Academy of Sciences.
[39] Daniel Brandeis,et al. Evidence for developmental changes in the visual word processing network beyond adolescence , 2006, NeuroImage.
[40] Kendrick Kay,et al. Bottom-up and top-down computations in high-level visual cortex , 2016, bioRxiv.
[41] J. Victor,et al. A new statistic for steady-state evoked potentials. , 1991, Electroencephalography and clinical neurophysiology.
[42] A. Norcia,et al. The 6Hz fundamental stimulation frequency rate for individual face discrimination in the right occipito-temporal cortex , 2013, Neuropsychologia.
[43] Uta Frith,et al. Reading for meaning and reading for sound in autistic and dyslexic children , 1983 .
[44] Maximilian Riesenhuber,et al. Individual Variability in Location Impacts Orthographic Selectivity in the “Visual Word Form Area” , 2013, The Journal of Neuroscience.
[45] Anthony M. Norcia,et al. Temporal Tuning of Word- and Face-selective Cortex , 2016, Journal of Cognitive Neuroscience.
[46] L. Jancke,et al. ERP differences of pre-lexical processing between dyslexic and non-dyslexic children. , 2010, International journal of psychophysiology : official journal of the International Organization of Psychophysiology.
[47] R. Goebel,et al. Integration of Letters and Speech Sounds in the Human Brain , 2004, Neuron.
[48] J. Pernier,et al. ERP Manifestations of Processing Printed Words at Different Psycholinguistic Levels: Time Course and Scalp Distribution , 1999, Journal of Cognitive Neuroscience.
[49] Jeffrey R. Binder,et al. Tuning of the human left fusiform gyrus to sublexical orthographic structure , 2006, NeuroImage.
[50] Mariano Sigman,et al. Hierarchical Coding of Letter Strings in the Ventral Stream: Dissecting the Inner Organization of the Visual Word-Form System , 2007, Neuron.
[51] Andreas Kleinschmidt,et al. Specialization for written words over objects in the visual cortex , 2011, NeuroImage.
[52] A. Norcia,et al. An adaptive filter for steady-state evoked responses. , 1995, Electroencephalography and clinical neurophysiology.
[53] Marianna D. Eddy,et al. Development of sensitivity versus specificity for print in the visual word form area , 2017, Brain and Language.
[54] J. Mehta,et al. Tissue Responses and Wound Healing following Laser Scleral Microporation for Presbyopia Therapy , 2020, Translational vision science & technology.
[55] J B Poline,et al. Cerebral mechanisms of word masking and unconscious repetition priming , 2001, Nature Neuroscience.
[56] B. Wandell,et al. Differential sensitivity to words and shapes in ventral occipito-temporal cortex. , 2007, Cerebral cortex.
[57] Karl Magnus Petersson,et al. Electrophysiological correlates of impaired reading in dyslexic pre-adolescent children , 2012, Brain and Cognition.
[58] H. Lyytinen,et al. Brain sensitivity to print emerges when children learn letter–speech sound correspondences , 2010, Proceedings of the National Academy of Sciences.
[59] Guinevere F. Eden,et al. Chinese Character and English Word processing in children's ventral occipitotemporal cortex: fMRI evidence for script invariance , 2016, NeuroImage.
[60] Riitta Hari,et al. Audiovisual Integration of Letters in the Human Brain , 2000, Neuron.
[61] R. Bro,et al. Resolving the sign ambiguity in the singular value decomposition , 2008 .
[62] Winston D. Goh,et al. Consistency norms for 37,677 english words , 2020, Behavior Research Methods.
[63] J. Kilner,et al. Bias in a common EEG and MEG statistical analysis and how to avoid it , 2013, Clinical Neurophysiology.
[64] J B Poline,et al. Letter Binding and Invariant Recognition of Masked Words , 2004, Psychological science.
[65] L. Jost,et al. Neurocognitive mechanisms of learning to read: print tuning in beginning readers related to word-reading fluency and semantics but not phonology. , 2015, Developmental science.
[66] Artur Marchewka,et al. Prereader to beginning reader: changes induced by reading acquisition in print and speech brain networks , 2018, Journal of child psychology and psychiatry, and allied disciplines.
[67] Bruno Rossion,et al. Early electrophysiological responses to multiple face orientations correlate with individual discrimination performance in humans , 2007, NeuroImage.
[68] Brian A. Wandell,et al. Anatomy of the visual word form area: Adjacent cortical circuits and long-range white matter connections , 2013, Brain and Language.
[69] Lucas C. Parra,et al. Recipes for the linear analysis of EEG , 2005, NeuroImage.
[70] James R. Booth,et al. Development of Brain Mechanisms for Processing Orthographic and Phonologic Representations , 2004, Journal of Cognitive Neuroscience.
[71] R. Adorni,et al. C1 and P1 visual responses to words are enhanced by attention to orthographic vs. lexical properties , 2009, Neuroscience Letters.
[72] S. Dehaene,et al. The unique role of the visual word form area in reading , 2011, Trends in Cognitive Sciences.
[73] D. Tucker. Spatial sampling of head electrical fields: the geodesic sensor net. , 1993, Electroencephalography and clinical neurophysiology.
[74] Bruno Rossion,et al. Left cortical specialization for visual letter strings predicts rudimentary knowledge of letter-sound association in preschoolers , 2016, Proceedings of the National Academy of Sciences.
[75] Klaus-Robert Müller,et al. The Berlin Brain-Computer Interface: Accurate performance from first-session in BCI-naive subjects , 2008, IEEE Transactions on Biomedical Engineering.
[76] W. Penny,et al. Reading Front to Back: MEG Evidence for Early Feedback Effects During Word Recognition , 2012, Cerebral cortex.
[77] Steven E. Petersen,et al. Manipulation of Length and Lexicality Localizes the Functional Neuroanatomy of Phonological Processing in Adult Readers , 2011, Journal of Cognitive Neuroscience.
[78] Marcin Szwed,et al. Effects of Literacy in Early Visual and Occipitotemporal Areas of Chinese and French Readers , 2014, Journal of Cognitive Neuroscience.
[79] A. Norcia,et al. Neural sources of letter and Vernier acuity , 2020, Scientific Reports.
[80] Kalanit Grill-Spector,et al. Temporal Processing Capacity in High-Level Visual Cortex Is Domain Specific , 2015, The Journal of Neuroscience.
[81] L. Parra,et al. Human Neuroscience Original Research Article Correlated Components of Ongoing Eeg Point to Emotionally Laden Attention – a Possible Marker of Engagement? , 2022 .
[82] W. Schneider,et al. Cross‐cultural effect on the brain revisited: Universal structures plus writing system variation , 2005, Human brain mapping.
[83] J. Ashby,et al. Prosodic phonological representations early in visual word recognition. , 2008, Journal of experimental psychology. Human perception and performance.
[84] Iliana I. Karipidis,et al. Simultaneous EEG and fMRI reveals stronger sensitivity to orthographic strings in the left occipito-temporal cortex of typical versus poor beginning readers , 2019, Developmental Cognitive Neuroscience.
[85] Arthur M. Jacobs,et al. What is the pronunciation for -ough and the spelling for /u/? A database for computing feedforward and feedback consistency in English , 1997 .
[86] Cathy J. Price,et al. Inter- and Intrahemispheric Connectivity Differences When Reading Japanese Kanji and Hiragana , 2013, Cerebral cortex.
[87] Philipp Berens,et al. CircStat: AMATLABToolbox for Circular Statistics , 2009, Journal of Statistical Software.
[88] Christian Wallraven,et al. Serial exploration of faces: comparing vision and touch. , 2012, Journal of vision.
[89] R. Salmelin,et al. Neural Correlates of Letter-String Length and Lexicality during Reading in a Regular Orthography , 2003, Journal of Cognitive Neuroscience.
[90] K. Rayner. Eye movements in reading and information processing: 20 years of research. , 1998, Psychological bulletin.
[91] Edward F. Ester,et al. Substitution and pooling in visual crowding induced by similar and dissimilar distractors. , 2015, Journal of vision.
[92] Jacek Dmochowski,et al. Maximally reliable spatial filtering of steady state visual evoked potentials , 2014, NeuroImage.
[93] Julie A Fiez,et al. Decoding and disrupting left midfusiform gyrus activity during word reading , 2016, Proceedings of the National Academy of Sciences.
[94] Morag Stuart,et al. Children's printed word database: continuities and changes over time in children's early reading vocabulary. , 2010, British journal of psychology.
[95] Marc Brysbaert,et al. Wuggy: A multilingual pseudoword generator , 2010, Behavior research methods.
[96] Qiong Zhang,et al. The Structures of Letters and Symbols throughout Human History Are Selected to Match Those Found in Objects in Natural Scenes , 2006, The American Naturalist.
[97] Joseph T. Devlin,et al. Early and Sustained Supramarginal Gyrus Contributions to Phonological Processing , 2012, Front. Psychology.
[98] X. Weng,et al. Development of neural specialization for print: Evidence for predictive coding in visual word recognition , 2019, PLoS biology.
[99] Daniel Brandeis,et al. Emerging Neurophysiological Specialization for Letter Strings , 2005, Journal of Cognitive Neuroscience.
[100] Albrecht W. Inhoff. Visual word processing. , 1987 .
[101] Martin Kronbichler,et al. Top‐down and bottom‐up influences on the left ventral occipito‐temporal cortex during visual word recognition: An analysis of effective connectivity , 2014, Human brain mapping.
[102] Z. Kourtzi,et al. Neural coding of global form in the human visual cortex. , 2008, Journal of neurophysiology.
[103] M. Sigman,et al. Opinion TRENDS in Cognitive Sciences Vol.9 No.7 July 2005 The neural code for written words: a proposal , 2022 .
[104] Thomas A Zeffiro,et al. Development of neural mechanisms for reading , 2003, Nature Neuroscience.
[105] Bruno Rossion,et al. A steady-state visual evoked potential approach to individual face perception: Effect of inversion, contrast-reversal and temporal dynamics , 2012, NeuroImage.