Temporal Dynamics of Proactive and Reactive Motor Inhibition
暂无分享,去创建一个
Elinor Tzvi | Ulrike M. Krämer | Matthias Liebrand | U. Krämer | M. Liebrand | E. Tzvi | Inga Pein | Inga Pein
[1] T. Braver,et al. Explaining the many varieties of working memory variation: Dual mechanisms of cognitive control. , 2007 .
[2] Robert T. Knight,et al. Electrophysiological Evidence for Different Inhibitory Mechanisms When Stopping or Changing a Planned Response , 2011, Journal of Cognitive Neuroscience.
[3] D. Cheyne. MEG studies of sensorimotor rhythms: A review , 2013, Experimental Neurology.
[4] Christina F. Lavallee,et al. Electroencephalography of response inhibition tasks: functional networks and cognitive contributions. , 2013, International journal of psychophysiology : official journal of the International Organization of Psychophysiology.
[5] Josep Marco-Pallarés,et al. Electrophysiological correlates of anticipating improbable but desired events , 2013, NeuroImage.
[6] T. Robbins,et al. Inhibition and the right inferior frontal cortex: one decade on , 2014, Trends in Cognitive Sciences.
[7] J. Rothwell,et al. Uncoupling of contingent negative variation and alpha band event-related desynchronization in a go/no-go task , 2001, Clinical Neurophysiology.
[8] R. Hari,et al. Spatiotemporal characteristics of sensorimotor neuromagnetic rhythms related to thumb movement , 1994, Neuroscience.
[9] Sara López-Martín,et al. Spatiotemporal characterization of response inhibition , 2013, NeuroImage.
[10] M. Vink,et al. The role of stop‐signal probability and expectation in proactive inhibition , 2015, The European journal of neuroscience.
[11] Nitin Tandon,et al. Intracranial electroencephalography reveals different temporal profiles for dorsal- and ventro-lateral prefrontal cortex in preparing to stop action. , 2013, Cerebral cortex.
[12] T. Braver. The variable nature of cognitive control: a dual mechanisms framework , 2012, Trends in Cognitive Sciences.
[13] C. Brunia,et al. Wait and see. , 2001, International journal of psychophysiology : official journal of the International Organization of Psychophysiology.
[14] T. Sejnowski,et al. Removal of eye activity artifacts from visual event-related potentials in normal and clinical subjects , 2000, Clinical Neurophysiology.
[15] Juliana Yordanova,et al. On the relation of movement-related potentials to the go/no-go effect on P3 , 2006, Biological Psychology.
[16] J. Tecce. Contingent negative variation (CNV) and psychological processes in man. , 1972, Psychological bulletin.
[17] M. Vink,et al. Expectations and violations: Delineating the neural network of proactive inhibitory control , 2013, Human brain mapping.
[18] Andrew C. N. Chen,et al. Alpha event-related desynchronization preceding a go/no-go task: a high-resolution EEG study. , 2004, Neuropsychology.
[19] Magnus Lindgren,et al. Impact of Orbitofrontal Lesions on Electrophysiological Signals in a Stop Signal Task , 2014, Journal of Cognitive Neuroscience.
[20] W. Klimesch,et al. Visual discrimination performance is related to decreased alpha amplitude but increased phase locking , 2005, Neuroscience Letters.
[21] Jan R. Wessel,et al. Neural synchrony indexes impaired motor slowing after errors and novelty following white matter damage , 2016, Neurobiology of Aging.
[22] Arnaud Delorme,et al. EEGLAB: an open source toolbox for analysis of single-trial EEG dynamics including independent component analysis , 2004, Journal of Neuroscience Methods.
[23] J. Fuster. Prefrontal Cortex , 2018 .
[24] R. Barry,et al. CNV resolution does not cause NoGo anteriorisation of the P3: a failure to replicate Simson et al. , 2013, International journal of psychophysiology : official journal of the International Organization of Psychophysiology.
[25] B. Kopp,et al. N2, P3 and the lateralized readiness potential in a nogo task involving selective response priming. , 1996, Electroencephalography and clinical neurophysiology.
[26] Jan R. Wessel,et al. It's not too late: the onset of the frontocentral P3 indexes successful response inhibition in the stop-signal paradigm. , 2015, Psychophysiology.
[27] Anthonio Teolis,et al. Computational signal processing with wavelets , 1998, Applied and numerical harmonic analysis.
[28] Alexander Münchau,et al. Charting the excitability of premotor to motor connections while withholding or initiating a selected movement , 2010, The European journal of neuroscience.
[29] R Kakigi,et al. [Event-related brain potentials]. , 1997, Nihon rinsho. Japanese journal of clinical medicine.
[30] R. Knight,et al. Prefrontal cortex is critical for contextual processing: evidence from brain lesions. , 2009, Brain : a journal of neurology.
[31] Donatella Spinelli,et al. Spatiotemporal brain mapping during preparation, perception, and action , 2016, NeuroImage.
[32] J. Schoffelen,et al. University of Birmingham Occipital alpha activity during stimulus processing gates the information flow to object-selective cortex , 2014 .
[33] A. Aron. From Reactive to Proactive and Selective Control: Developing a Richer Model for Stopping Inappropriate Responses , 2011, Biological Psychiatry.
[34] Norihiko Fujita,et al. Movement-Related Desynchronization of the Cerebral Cortex Studied with Spatially Filtered Magnetoencephalography , 2000, NeuroImage.
[35] G. Woodman,et al. Event-related potential studies of attention , 2000, Trends in Cognitive Sciences.
[36] Michael A. DiSano,et al. Intracranial EEG Reveals a Time- and Frequency-Specific Role for the Right Inferior Frontal Gyrus and Primary Motor Cortex in Stopping Initiated Responses , 2009, The Journal of Neuroscience.
[37] Birte U. Forstmann,et al. Trial-by-trial fluctuations in CNV amplitude reflect anticipatory adjustment of response caution , 2014, NeuroImage.
[38] C. Brunia. Movement and stimulus preceding negativity , 1988, Biological Psychology.
[39] T. Ergenoğlu,et al. Alpha rhythm of the EEG modulates visual detection performance in humans. , 2004, Brain research. Cognitive brain research.
[40] Robert T. Knight,et al. The role of the lateral prefrontal cortex in inhibitory motor control , 2013, Cortex.
[41] W. Klimesch. Alpha-band oscillations, attention, and controlled access to stored information , 2012, Trends in Cognitive Sciences.
[42] G. Comi,et al. IFCN standards for digital recording of clinical EEG. International Federation of Clinical Neurophysiology. , 1998, Electroencephalography and clinical neurophysiology.
[43] Thomas Brochier,et al. Modulations of EEG Beta Power during Planning and Execution of Grasping Movements , 2013, PloS one.
[44] Christoph S. Herrmann,et al. When holding your horses meets the deer in the headlights: time-frequency characteristics of global and selective stopping under conditions of proactive and reactive control , 2014, Front. Hum. Neurosci..
[45] Jürgen Kayser,et al. On the benefits of using surface Laplacian (current source density) methodology in electrophysiology. , 2015, International journal of psychophysiology : official journal of the International Organization of Psychophysiology.
[46] R. Barry,et al. Movement-related potentials in the Go/NoGo task: The P3 reflects both cognitive and motor inhibition , 2008, Clinical Neurophysiology.
[47] J. Leitão,et al. Event-Related Brain Potentials in the Study of Inhibition: Cognitive Control, Source Localization and Age-Related Modulations , 2014, Neuropsychology Review.
[48] B. Burle,et al. Spatial and temporal resolutions of EEG: Is it really black and white? A scalp current density view , 2015, International journal of psychophysiology : official journal of the International Organization of Psychophysiology.
[49] G. Pfurtscheller,et al. ERD/ERS patterns reflecting sensorimotor activation and deactivation. , 2006, Progress in brain research.
[50] Giuseppe Pellizzer,et al. Brain oscillatory activity during motor preparation: effect of directional uncertainty on beta, but not alpha, frequency band , 2015, Front. Neurosci..
[51] Jürgen Kayser,et al. Principal components analysis of Laplacian waveforms as a generic method for identifying ERP generator patterns: I. Evaluation with auditory oddball tasks , 2006, Clinical Neurophysiology.
[52] Gregor Thut,et al. Prefrontal Control over Motor Cortex Cycles at Beta Frequency during Movement Inhibition , 2014, Current Biology.
[53] Steven J. Luck,et al. ERPLAB: an open-source toolbox for the analysis of event-related potentials , 2014, Front. Hum. Neurosci..
[54] Marina Schmid,et al. An Introduction To The Event Related Potential Technique , 2016 .
[55] R. Krebs,et al. Preparing for (valenced) action: The role of differential effort in the orthogonalized go/no-go task. , 2016, Psychophysiology.
[56] J. Gross,et al. On the Role of Prestimulus Alpha Rhythms over Occipito-Parietal Areas in Visual Input Regulation: Correlation or Causation? , 2010, The Journal of Neuroscience.
[57] Martin Eimer,et al. Effects of attention and stimulus probability on ERPs in a Go/Nogo task , 1993, Biological Psychology.
[58] K. R. Ridderinkhof,et al. How Preparation Changes the Need for Top–Down Control of the Basal Ganglia When Inhibiting Premature Actions , 2012, The Journal of Neuroscience.
[59] Nicole C. Swann,et al. Deep Brain Stimulation of the Subthalamic Nucleus Alters the Cortical Profile of Response Inhibition in the Beta Frequency Band: A Scalp EEG Study in Parkinson's Disease , 2011, The Journal of Neuroscience.
[60] John J. Foxe,et al. The Role of Alpha-Band Brain Oscillations as a Sensory Suppression Mechanism during Selective Attention , 2011, Front. Psychology.
[61] Nitin Tandon,et al. Roles for the pre-supplementary motor area and the right inferior frontal gyrus in stopping action: Electrophysiological responses and functional and structural connectivity , 2012, NeuroImage.
[62] A. Labarga,et al. Frontal and central oscillatory changes related to different aspects of the motor process: a study in go/no-go paradigms , 2004, Experimental Brain Research.
[63] S. Hillyard,et al. Event-related brain potentials in the study of visual selective attention. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[64] H. Bokura,et al. Electrophysiological correlates for response inhibition in a Go/NoGo task , 2001, Clinical Neurophysiology.
[65] Simon Hanslmayr,et al. The role of alpha oscillations in temporal attention , 2011, Brain Research Reviews.
[66] Yuji Mizuno,et al. Neural dynamics in motor preparation: From phase-mediated global computation to amplitude-mediated local computation , 2015, NeuroImage.
[67] A. Urbano,et al. Performances of surface Laplacian estimators: A study of simulated and real scalp potential distributions , 2005, Brain Topography.
[68] F. Verbruggen,et al. Proactive and Reactive Stopping When Distracted: An Attentional Account , 2014, Journal of experimental psychology. Human perception and performance.
[69] G. Logan,et al. Response inhibition in the stop-signal paradigm , 2008, Trends in Cognitive Sciences.
[70] T. Robbins,et al. Inhibition and the right inferior frontal cortex , 2004, Trends in Cognitive Sciences.
[71] M. Berchicci,et al. New insights into old waves. Matching stimulus- and response-locked ERPs on the same time-window , 2016, Biological Psychology.