Involvement of the dorsal and ventral attention networks in oddball stimulus processing: A meta‐analysis
暂无分享,去创建一个
[1] E. Liebenthal,et al. Neural events leading to and associated with detection of sounds under high processing load , 2011, Human brain mapping.
[2] R. O’Connell,et al. A simultaneous ERP/fMRI investigation of the P300 aging effect , 2012, Neurobiology of Aging.
[3] Nadim Joni Shah,et al. Nicotine Effects on Brain Function during a Visual Oddball Task: A Comparison between Conventional and EEG-informed fMRI Analysis , 2012, Journal of Cognitive Neuroscience.
[4] Richard G. Wise,et al. Separating neural and vascular effects of caffeine using simultaneous EEG–FMRI: Differential effects of caffeine on cognitive and sensorimotor brain responses , 2012, NeuroImage.
[5] Markus Ullsperger,et al. Surprise and Error: Common Neuronal Architecture for the Processing of Errors and Novelty , 2012, The Journal of Neuroscience.
[6] Maximilian Reiser,et al. Age effects on the P300 potential and the corresponding fMRI BOLD-signal , 2012, NeuroImage.
[7] J. Edgar,et al. Mood Modulates Auditory Laterality of Hemodynamic Mismatch Responses during Dichotic Listening , 2012, PloS one.
[8] M. Czisch,et al. On the Need of Objective Vigilance Monitoring: Effects of Sleep Loss on Target Detection and Task-Negative Activity Using Combined EEG/fMRI , 2012, Front. Neur..
[9] O. Barbarash,et al. The Influence of Low and Moderate Carotid Stenosis on Neurophysiologic Status of Patients Undergoing on-pump Coronary Artery Bypass Grafting , 2012, Front. Neur..
[10] Maurizio Corbetta,et al. Orienting to the EnvironmentSeparate Contributions of Dorsal and Ventral Frontoparietal Attention Networks , 2012 .
[11] George R. Mangun,et al. The neuroscience of attention : attentional control and selection , 2012 .
[12] P. McGuire,et al. Induction of psychosis by Δ9-tetrahydrocannabinol reflects modulation of prefrontal and striatal function during attentional salience processing. , 2012, Archives of general psychiatry.
[13] Vince D. Calhoun,et al. ICA-fNORM: Spatial Normalization of fMRI Data Using Intrinsic Group-ICA Networks , 2011, Front. Syst. Neurosci..
[14] W. Uttal. Mind and Brain: A Critical Appraisal of Cognitive Neuroscience , 2011 .
[15] O. Gruber,et al. How negative affect influences neural control processes underlying the resolution of cognitive interference: An event-related fMRI study , 2011, Neuroscience Research.
[16] Angela R. Laird,et al. Co-activation patterns distinguish cortical modules, their connectivity and functional differentiation , 2011, NeuroImage.
[17] M. Corbetta,et al. Spatial neglect and attention networks. , 2011, Annual review of neuroscience.
[18] Marisa O. Hollinshead,et al. The organization of the human cerebral cortex estimated by intrinsic functional connectivity. , 2011, Journal of neurophysiology.
[19] A. Turken,et al. The Neural Architecture of the Language Comprehension Network: Converging Evidence from Lesion and Connectivity Analyses , 2011, Front. Syst. Neurosci..
[20] N. Jon Shah,et al. Direction and magnitude of nicotine effects on the fMRI BOLD response are related to nicotine effects on behavioral performance , 2010, Psychopharmacology.
[21] Claudio Babiloni,et al. Effects of somatosensory stimulation and attention on human somatosensory cortex: An fMRI study , 2010, NeuroImage.
[22] G. Pearlson,et al. Decreased prefrontal cortex activity in mild traumatic brain injury during performance of an auditory oddball task , 2010, Brain Imaging and Behavior.
[23] Angela R. Laird,et al. Comparison of the disparity between Talairach and MNI coordinates in functional neuroimaging data: Validation of the Lancaster transform , 2010, NeuroImage.
[24] S. Bressler,et al. Large-scale brain networks in cognition: emerging methods and principles , 2010, Trends in Cognitive Sciences.
[25] Rozmin Halari,et al. Effects of age and sex on developmental neural networks of visual–spatial attention allocation , 2010, NeuroImage.
[26] V. Menon,et al. Saliency, switching, attention and control: a network model of insula function , 2010, Brain Structure and Function.
[27] Hongkeun Kim,et al. Dissociating the roles of the default-mode, dorsal, and ventral networks in episodic memory retrieval , 2010, NeuroImage.
[28] M. Corbetta,et al. Right Hemisphere Dominance during Spatial Selective Attention and Target Detection Occurs Outside the Dorsal Frontoparietal Network , 2010, The Journal of Neuroscience.
[29] Emiliano Macaluso,et al. Orienting of spatial attention and the interplay between the senses , 2010, Cortex.
[30] Shigeru Sato,et al. The neural basis of agency: An fMRI study , 2010, NeuroImage.
[31] Sanghoon Han,et al. The Inferior Parietal Lobule and Recognition Memory: Expectancy Violation or Successful Retrieval? , 2010, The Journal of Neuroscience.
[32] Christopher L. Asplund,et al. A central role for the lateral prefrontal cortex in goal-directed and stimulus-driven attention , 2010, Nature Neuroscience.
[33] Chris Rorden,et al. Spatial Attention Evokes Similar Activation Patterns for Visual and Auditory Stimuli , 2010, Journal of Cognitive Neuroscience.
[34] Klaus Scheffler,et al. Neural correlates of pre‐attentive processing of pattern deviance in professional musicians , 2009, Human brain mapping.
[35] S. Kastner,et al. Topographic maps in human frontal and parietal cortex , 2009, Trends in Cognitive Sciences.
[36] K. Zilles,et al. Coordinate‐based activation likelihood estimation meta‐analysis of neuroimaging data: A random‐effects approach based on empirical estimates of spatial uncertainty , 2009, Human brain mapping.
[37] M. Corbetta,et al. Interaction of Stimulus-Driven Reorienting and Expectation in Ventral and Dorsal Frontoparietal and Basal Ganglia-Cortical Networks , 2009, The Journal of Neuroscience.
[38] G. Dichter,et al. Affective context interferes with cognitive control in unipolar depression: an fMRI investigation. , 2009, Journal of affective disorders.
[39] Godfrey D Pearlson,et al. Effects of alcohol on performance on a distraction task during simulated driving. , 2009, Alcoholism, clinical and experimental research.
[40] David Friedman,et al. The brain's orienting response: An event‐related functional magnetic resonance imaging investigation , 2009, Human brain mapping.
[41] Chiara Nosarti,et al. The neural basis of response inhibition and attention allocation as mediated by gestational age , 2009, Human brain mapping.
[42] Yuezhi Li,et al. Localizing P300 generators in high-density event- related potential with fMRI. , 2009, Medical science monitor : international medical journal of experimental and clinical research.
[43] Carol Dobson-Stone,et al. Disturbances in selective information processing associated with the BDNF Val66Met polymorphism: Evidence from cognition, the P300 and fronto-hippocampal systems , 2009, Biological Psychology.
[44] Maurizio Corbetta,et al. Large-scale brain networks account for sustained and transient activity during target detection , 2009, NeuroImage.
[45] Ralph Weidner,et al. What is “Odd” in Posner's Location-cueing Paradigm? Neural Responses to Unexpected Location and Feature Changes Compared , 2009, Journal of Cognitive Neuroscience.
[46] Justin L. Vincent,et al. Evidence for a frontoparietal control system revealed by intrinsic functional connectivity. , 2008, Journal of neurophysiology.
[47] M. Corbetta,et al. Top-Down Control of Human Visual Cortex by Frontal and Parietal Cortex in Anticipatory Visual Spatial Attention , 2008, The Journal of Neuroscience.
[48] V. Calhoun,et al. Modulation of temporally coherent brain networks estimated using ICA at rest and during cognitive tasks , 2008, Human brain mapping.
[49] Mark A. Elliott,et al. Auditory Oddball fMRI in Schizophrenia: Association of Negative Symptoms with Regional Hypoactivation to Novel Distractors , 2008, Brain Imaging and Behavior.
[50] M. Corbetta,et al. The Reorienting System of the Human Brain: From Environment to Theory of Mind , 2008, Neuron.
[51] Claudio Babiloni,et al. Human secondary somatosensory cortex is involved in the processing of somatosensory rare stimuli: An fMRI study , 2008, NeuroImage.
[52] Bettina Sorger,et al. Novelty and target processing during an auditory novelty oddball: A simultaneous event-related potential and functional magnetic resonance imaging study , 2008, NeuroImage.
[53] R. Malach,et al. Data-driven clustering reveals a fundamental subdivision of the human cortex into two global systems , 2008, Neuropsychologia.
[54] C. Delpuech,et al. Subject's own name as a novel in a MMN design: A combined ERP and PET study , 2008, Brain Research.
[55] Friedemann Pulvermüller,et al. Memory traces for spoken words in the brain as revealed by the hemodynamic correlate of the mismatch negativity. , 2008, Cerebral cortex.
[56] R. Todd Constable,et al. Sensory and cognitive mechanisms of change detection in the context of speech , 2008, Brain Structure and Function.
[57] C. Carter,et al. Anterior cingulate cortex and conflict detection: An update of theory and data , 2007, Cognitive, affective & behavioral neuroscience.
[58] R. Näätänen,et al. The mismatch negativity (MMN) in basic research of central auditory processing: A review , 2007, Clinical Neurophysiology.
[59] Hans-Jochen Heinze,et al. Mesolimbic novelty processing in older adults. , 2007, Cerebral cortex.
[60] Godfrey D Pearlson,et al. An FMRI auditory oddball study of combined-subtype attention deficit hyperactivity disorder. , 2007, The American journal of psychiatry.
[61] Michael J. Brammer,et al. Temporal Lobe Dysfunction in Medication-Naïve Boys With Attention-Deficit/Hyperactivity Disorder During Attention Allocation and Its Relation to Response Variability , 2007, Biological Psychiatry.
[62] Michael J. Martinez,et al. Bias between MNI and Talairach coordinates analyzed using the ICBM‐152 brain template , 2007, Human brain mapping.
[63] M. Corbetta,et al. Right TPJ deactivation during visual search: functional significance and support for a filter hypothesis. , 2007, Cerebral cortex.
[64] G. Mangun,et al. Author ' s personal copy Research Report fMRI evidence for both generalized and specialized components of attentional control , 2007 .
[65] P. Stoeter,et al. Association of attentional network function with exon 5 variations of the CHRNA4 gene. , 2007, Human molecular genetics.
[66] E. Macaluso,et al. Dissociation of stimulus relevance and saliency factors during shifts of visuospatial attention. , 2007, Cerebral cortex.
[67] Mark A Elliott,et al. Hemodynamic responses in neural circuitries for detection of visual target and novelty: An event‐related fMRI study , 2007, Human brain mapping.
[68] Michal Mikl,et al. Effective connectivity in target stimulus processing: A dynamic causal modeling study of visual oddball task , 2007, NeuroImage.
[69] B. Turetsky,et al. Visual attention circuitry in schizophrenia investigated with oddball event-related functional magnetic resonance imaging. , 2007, The American journal of psychiatry.
[70] G. Glover,et al. Dissociable Intrinsic Connectivity Networks for Salience Processing and Executive Control , 2007, The Journal of Neuroscience.
[71] K. Felmingham,et al. Mapping frontal-limbic correlates of orienting to change detection , 2007, Neuroreport.
[72] L. Zago,et al. Right hemisphere dominance for auditory attention and its modulation by eye position: an event related fMRI study. , 2007, Restorative neurology and neuroscience.
[73] O. Gruber,et al. Oddball and incongruity effects during Stroop task performance: A comparative fMRI study on selective attention , 2006, Brain Research.
[74] K. Kiehl,et al. Abnormal function of the brain system supporting motivated attention in medicated patients with schizophrenia: an fMRI study , 2006, Psychological Medicine.
[75] Justin L. Vincent,et al. Spontaneous neuronal activity distinguishes human dorsal and ventral attention systems. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[76] Vinod Menon,et al. Parietal attentional system aberrations during target detection in adolescents with attention deficit hyperactivity disorder: event-related fMRI evidence. , 2006, The American journal of psychiatry.
[77] K. Kiehl,et al. The hemodynamics of oddball processing during single-tone and two-tone target detection tasks. , 2006, International journal of psychophysiology : official journal of the International Organization of Psychophysiology.
[78] J. Buhle,et al. Typologies of attentional networks , 2006, Nature Reviews Neuroscience.
[79] E. Gordon,et al. Differential BOLD responses to auditory target stimuli associated with a skin conductance response , 2006, Acta Neuropsychiatrica.
[80] Sarah Shomstein,et al. Parietal Cortex Mediates Voluntary Control of Spatial and Nonspatial Auditory Attention , 2006, The Journal of Neuroscience.
[81] Vince D. Calhoun,et al. Neuronal chronometry of target detection: Fusion of hemodynamic and event-related potential data , 2005, NeuroImage.
[82] David C. Van Essen,et al. A Population-Average, Landmark- and Surface-based (PALS) atlas of human cerebral cortex , 2005, NeuroImage.
[83] P. Fransson. Spontaneous low‐frequency BOLD signal fluctuations: An fMRI investigation of the resting‐state default mode of brain function hypothesis , 2005, Human brain mapping.
[84] Matthew J. Barton,et al. Neural Networks of Information Processing in Posttraumatic Stress Disorder: A Functional Magnetic Resonance Imaging Study , 2005, Biological Psychiatry.
[85] Maurizio Corbetta,et al. The human brain is intrinsically organized into dynamic, anticorrelated functional networks. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[86] M. Brass,et al. The role of the inferior frontal junction area in cognitive control , 2005, Trends in Cognitive Sciences.
[87] Vince D. Calhoun,et al. Hemispheric differences in hemodynamics elicited by auditory oddball stimuli , 2005, NeuroImage.
[88] Peter F. Liddle,et al. Attention orienting dysfunction during salient novel stimulus processing in schizophrenia , 2005, Schizophrenia Research.
[89] Jin Fan,et al. The activation of attentional networks , 2005, NeuroImage.
[90] Michal Mikl,et al. Combined event-related fMRI and intracerebral ERP study of an auditory oddball task , 2005, NeuroImage.
[91] M. Corbetta,et al. An Event-Related Functional Magnetic Resonance Imaging Study of Voluntary and Stimulus-Driven Orienting of Attention , 2005, The Journal of Neuroscience.
[92] John J. Foxe,et al. The neural circuitry of pre-attentive auditory change-detection: an fMRI study of pitch and duration mismatch negativity generators. , 2005, Cerebral cortex.
[93] Kent A. Kiehl,et al. Abnormal hemodynamics in schizophrenia during an auditory oddball task , 2005, Biological Psychiatry.
[94] Kathryn M. McMillan,et al. A comparison of label‐based review and ALE meta‐analysis in the Stroop task , 2005, Human brain mapping.
[95] Kathryn M. McMillan,et al. N‐back working memory paradigm: A meta‐analysis of normative functional neuroimaging studies , 2005, Human brain mapping.
[96] M. Brass,et al. Involvement of the inferior frontal junction in cognitive control: Meta‐analyses of switching and Stroop studies , 2005, Human brain mapping.
[97] Godfrey Pearlson,et al. An adaptive reflexive processing model of neurocognitive function: supporting evidence from a large scale (n = 100) fMRI study of an auditory oddball task , 2005, NeuroImage.
[98] Andrew B. Leber,et al. Coordination of Voluntary and Stimulus-Driven Attentional Control in Human Cortex , 2005, Psychological science.
[99] B Opitz,et al. Sensory and cognitive mechanisms for preattentive change detection in auditory cortex , 2005, The European journal of neuroscience.
[100] D. V. van Essen,et al. A Population-Average, Landmark- and Surface-based (PALS) atlas of human cerebral cortex. , 2005, NeuroImage.
[101] Jens Schwarzbach,et al. Control of object-based attention in human cortex. , 2004, Cerebral cortex.
[102] T. Fukami,et al. Estimation of temporary change of activation areas by moving an analysis time window in fMRI measurement , 2004, Journal of neural engineering.
[103] Tor D Wager,et al. Neuroimaging studies of shifting attention: a meta-analysis , 2004, NeuroImage.
[104] Gregory McCarthy,et al. Emotion-attention network interactions during a visual oddball task. , 2004, Brain research. Cognitive brain research.
[105] Rainer Goebel,et al. Attentional systems in target and distractor processing: a combined ERP and fMRI study , 2004, NeuroImage.
[106] C. Frith,et al. Neural Correlates of Attentional Capture in Visual Search , 2004, Journal of Cognitive Neuroscience.
[107] Robert Schmitt,et al. Integration of fMRI and simultaneous EEG: towards a comprehensive understanding of localization and time-course of brain activity in target detection , 2004, NeuroImage.
[108] Gregory McCarthy,et al. Dynamic and strategic aspects of executive processing , 2004, Brain Research.
[109] S. Yantis,et al. Cortical mechanisms of feature-based attentional control. , 2003, Cerebral cortex.
[110] M. Corbetta,et al. Quantitative analysis of attention and detection signals during visual search. , 2003, Journal of neurophysiology.
[111] Peter F. Liddle,et al. Abnormal processing of speech during oddball target detection in schizophrenia , 2003, NeuroImage.
[112] G. Pagnoni,et al. Human Striatal Response to Salient Nonrewarding Stimuli , 2003, The Journal of Neuroscience.
[113] Mark E Ladd,et al. Sparse imaging of the auditory oddball task with functional MRI , 2003, Neuroreport.
[114] M. Milham,et al. Competition for priority in processing increases prefrontal cortex's involvement in top-down control: an event-related fMRI study of the stroop task. , 2003, Brain research. Cognitive brain research.
[115] B Giesbrecht,et al. Neural mechanisms of top-down control during spatial and feature attention , 2003, NeuroImage.
[116] T. Dierks,et al. Cerebral networks linked to the event-related potential P300 , 2003, European Archives of Psychiatry and Clinical Neuroscience.
[117] Vincent P. Clark,et al. Orthogonal Polynomial Regression for the Detection of Response Variability in Event-Related fMRI , 2002, NeuroImage.
[118] P. Skudlarski,et al. Correlations and dissociations between BOLD signal and P300 amplitude in an auditory oddball task: a parametric approach to combining fMRI and ERP. , 2002, Magnetic resonance imaging.
[119] Thomas E. Nichols,et al. Thresholding of Statistical Maps in Functional Neuroimaging Using the False Discovery Rate , 2002, NeuroImage.
[120] E. Macaluso,et al. Supramodal Effects of Covert Spatial Orienting Triggered by Visual or Tactile Events , 2002, Journal of Cognitive Neuroscience.
[121] M. Corbetta,et al. Control of goal-directed and stimulus-driven attention in the brain , 2002, Nature Reviews Neuroscience.
[122] F. Kruggel,et al. Hemodynamic and Electroencephalographic Responses to Illusory Figures: Recording of the Evoked Potentials during Functional MRI , 2001, NeuroImage.
[123] T. Braver,et al. Anterior cingulate cortex and response conflict: effects of frequency, inhibition and errors. , 2001, Cerebral cortex.
[124] G L Shulman,et al. INAUGURAL ARTICLE by a Recently Elected Academy Member:A default mode of brain function , 2001 .
[125] K. Kiehl,et al. An event-related fMRI study of visual and auditory oddball tasks , 2001 .
[126] K. Kiehl,et al. Neural sources involved in auditory target detection and novelty processing: an event-related fMRI study. , 2001, Psychophysiology.
[127] Karl J. Friston,et al. Brain Mechanisms for Detecting Perceptual, Semantic, and Emotional Deviance , 2000, NeuroImage.
[128] Leslie G. Ungerleider,et al. Mechanisms of visual attention in the human cortex. , 2000, Annual review of neuroscience.
[129] P. Skudlarski,et al. Event-related fMRI of auditory and visual oddball tasks. , 2000, Magnetic resonance imaging.
[130] R. Benson,et al. Responses to rare visual target and distractor stimuli using event-related fMRI. , 2000, Journal of neurophysiology.
[131] M. Corbetta,et al. Erratum to “Translocation machinery for synthesis of integral membrane and secretory proteins in dendritic spines” , 2000, Nature Neuroscience.
[132] J. Downar,et al. A multimodal cortical network for the detection of changes in the sensory environment , 2000, Nature Neuroscience.
[133] J. Gore,et al. A Stimulus-Driven Approach to Object Identity and Location Processing in the Human Brain , 2000, Neuron.
[134] R. Goebel,et al. The functional neuroanatomy of target detection: an fMRI study of visual and auditory oddball tasks. , 1999, Cerebral cortex.
[135] J. Gore,et al. An Event-Related fMRI Study of Implicit Phrase-Level Syntactic and Semantic Processing , 1999, NeuroImage.
[136] T. Yoshiura,et al. Functional MRI study of auditory and visual oddball tasks. , 1999, Neuroreport.
[137] A. Friederici,et al. The functional neuroanatomy of novelty processing: integrating ERP and fMRI results. , 1999, Cerebral cortex.
[138] D. V. von Cramon,et al. Combining electrophysiological and hemodynamic measures of the auditory oddball. , 1999, Psychophysiology.
[139] J. Ford,et al. Combined event‐related fMRI and EEG evidence for temporal—parietal cortex activation during target detection , 1997, Neuroreport.
[140] M. Torrens. Co-Planar Stereotaxic Atlas of the Human Brain—3-Dimensional Proportional System: An Approach to Cerebral Imaging, J. Talairach, P. Tournoux. Georg Thieme Verlag, New York (1988), 122 pp., 130 figs. DM 268 , 1990 .
[141] N. Squires,et al. Two varieties of long-latency positive waves evoked by unpredictable auditory stimuli in man. , 1975, Electroencephalography and clinical neurophysiology.