How challenges in auditory fMRI led to general advancements for the field
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[1] T. L. Davis,et al. Language dominance determined by whole brain functional MRI in patients with brain lesions , 1999, Neurology.
[3] Matthew H. Davis,et al. Detecting awareness in the vegetative state. , 2006, Science.
[4] J. Kaas,et al. Tonotopic organization, architectonic fields, and connections of auditory cortex in macaque monkeys , 1993, The Journal of comparative neurology.
[5] Deborah A. Hall,et al. Acoustic, psychophysical, and neuroimaging measurements of the effectiveness of active cancellation during auditory functional magnetic resonance imaging. , 2009, The Journal of the Acoustical Society of America.
[6] C. Schreiner,et al. Representation of amplitude modulation in the auditory cortex of the cat. I. The anterior auditory field (AAF) , 1986, Hearing Research.
[7] D. Lim,et al. Effects of the acoustic noise of the gradient systems on fMRI: A study on auditory, motor, and visual cortices , 1998, Magnetic resonance in medicine.
[8] Colin Humphries,et al. Tonotopic organization of human auditory cortex , 2010, NeuroImage.
[9] S E Petersen,et al. Detection of cortical activation during averaged single trials of a cognitive task using functional magnetic resonance imaging. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[10] Peter Herscovitch,et al. Tonotopic organization in human auditory cortex revealed by positron emission tomography , 1985, Hearing Research.
[11] C. Schreiner,et al. Representation of amplitude modulation in the auditory cortex of the cat. II. Comparison between cortical fields , 1988, Hearing Research.
[12] Kenneth Hugdahl,et al. An fMRI study of auditory hallucinations in patients with epilepsy , 2010, Epilepsia.
[13] J. Rauschecker,et al. Attention‐related modulation of activity in primary and secondary auditory cortex , 1997, Neuroreport.
[14] Dave R M Langers,et al. Interactions between hemodynamic responses to scanner acoustic noise and auditory stimuli in functional magnetic resonance imaging , 2005, Magnetic resonance in medicine.
[15] R. Weisskoff,et al. Quantitative assessment of auditory cortex responses induced by imager acoustic noise , 1999, Human brain mapping.
[16] R. S. Hinks,et al. Time course EPI of human brain function during task activation , 1992, Magnetic resonance in medicine.
[17] Deborah A. Hall,et al. fMRI of the auditory cortex , 2006 .
[18] K. Scheffler,et al. Tonotopic organization of the human auditory cortex as detected by BOLD-FMRI , 1998, Hearing Research.
[19] Jeffrey R. Binder,et al. Simultaneous ERP and fMRI of the auditory cortex in a passive oddball paradigm , 2003, NeuroImage.
[20] A R Palmer,et al. Functional magnetic resonance imaging measurements of sound-level encoding in the absence of background scanner noise. , 2001, The Journal of the Acoustical Society of America.
[21] K. Lehnertz,et al. Tonotopic organization of the human auditory cortex revealed by transient auditory evoked magnetic fields. , 1988, Electroencephalography and clinical neurophysiology.
[22] R. Murray,et al. Mapping auditory hallucinations in schizophrenia using functional magnetic resonance imaging. , 2000, Archives of general psychiatry.
[23] T. Ernst,et al. fMRI-acoustic noise alters brain activation during working memory tasks , 2005, NeuroImage.
[24] A R Palmer,et al. Sound‐Level Measurements and Calculations of Safe Noise Dosage During EPI at 3 T , 2000, Journal of magnetic resonance imaging : JMRI.
[25] A R Palmer,et al. Modulation and task effects in auditory processing measured using fMRI , 2000, Human brain mapping.
[26] H. E. Brown,et al. Utilizing hemodynamic delay and dispersion to detect fMRI signal change without auditory interference: The behavior interleaved gradients technique , 1999, Magnetic resonance in medicine.
[27] M M Merzenich,et al. Cochleotopic organization of primary auditory cortex in the cat. , 1973, Brain research.
[28] S. Clarke,et al. Cytochrome Oxidase, Acetylcholinesterase, and NADPH-Diaphorase Staining in Human Supratemporal and Insular Cortex: Evidence for Multiple Auditory Areas , 1997, NeuroImage.
[29] W. Edmister,et al. Nonlinearity of FMRI responses in human auditory cortex , 2004, Human brain mapping.
[30] D. Hall,et al. Reducing the effects of background noise during auditory functional magnetic resonance imaging of speech processing: qualitative and quantitative comparisons between two image acquisition schemes and noise cancellation. , 2011, Journal of speech, language, and hearing research : JSLHR.
[31] John Suckling,et al. Effects of psychotic state and task demand on prefrontal function in schizophrenia: an fMRI study of overt verbal fluency. , 2005, The American journal of psychiatry.
[32] Dave R. M. Langers,et al. Robustness of intrinsic connectivity networks in the human brain to the presence of acoustic scanner noise , 2011, NeuroImage.
[33] A. Dale,et al. Tonotopic organization in human auditory cortex revealed by progressions of frequency sensitivity. , 2004, Journal of neurophysiology.
[34] J. Gonzalez-Castillo,et al. Assessment of temporal state-dependent interactions between auditory fMRI responses to desired and undesired acoustic sources , 2011, Hearing Research.
[35] Технология. Springer Science+Business Media , 2013 .
[36] G. Mangun,et al. Tonotopy in human auditory cortex examined with functional magnetic resonance imaging , 1997, Human brain mapping.
[37] R. Weisskoff,et al. Improved auditory cortex imaging using clustered volume acquisitions , 1999, Human brain mapping.
[38] M. Merzenich,et al. Representation of the cochlear partition of the superior temporal plane of the macaque monkey. , 1973, Brain research.
[39] A. Dale,et al. Human posterior auditory cortex gates novel sounds to consciousness. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[40] A. Galaburda,et al. Cytoarchitectonic organization of the human auditory cortex , 1980, The Journal of comparative neurology.
[41] Paul Allen,et al. Neural correlates of the misattribution of speech in schizophrenia , 2007, British Journal of Psychiatry.
[42] James L. McClelland,et al. Dissociating stimulus‐driven semantic and phonological effect during reading and naming , 2006, Human brain mapping.
[43] Irina S. Sigalovsky,et al. Effects of sound level on fMRI activation in human brainstem, thalamic and cortical centers , 2006, Hearing Research.
[44] R. Bowtell,et al. “sparse” temporal sampling in auditory fMRI , 1999, Human brain mapping.
[45] R. Goebel,et al. Mirror-Symmetric Tonotopic Maps in Human Primary Auditory Cortex , 2003, Neuron.
[46] Christian Schwarzbauer,et al. Evaluating an acoustically quiet EPI sequence for use in fMRI studies of speech and auditory processing , 2010, NeuroImage.
[47] Dave R. M. Langers,et al. Hearing Without Listening: Functional Connectivity Reveals the Engagement of Multiple Nonauditory Networks During Basic Sound Processing , 2011, Brain Connect..
[48] B R Rosen,et al. Modulation of auditory and visual cortex by selective attention is modality-dependent. , 1996, Neuroreport.
[49] J W Belliveau,et al. Borders of multiple visual areas in humans revealed by functional magnetic resonance imaging. , 1995, Science.
[50] J. Rauschecker,et al. Hierarchical Organization of the Human Auditory Cortex Revealed by Functional Magnetic Resonance Imaging , 2001, Journal of Cognitive Neuroscience.
[51] B. Shinn-Cunningham,et al. Task-modulated “what” and “where” pathways in human auditory cortex , 2006, Proceedings of the National Academy of Sciences.