Frequency and power of human alpha oscillations drift systematically with time-on-task
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Gregor Thut | Joachim Gross | Christian Keitel | Raquel E. London | Domenica Veniero | Christopher S.Y. Benwell | Chiara F. Tagliabue
[1] G. V. Simpson,et al. Anticipatory Biasing of Visuospatial Attention Indexed by Retinotopically Specific α-Bank Electroencephalography Increases over Occipital Cortex , 2000, The Journal of Neuroscience.
[2] B. Postle,et al. The Speed of Alpha-Band Oscillations Predicts the Temporal Resolution of Visual Perception , 2015, Current Biology.
[3] John J. Foxe,et al. The Role of Alpha-Band Brain Oscillations as a Sensory Suppression Mechanism during Selective Attention , 2011, Front. Psychology.
[4] H. Caspers. Electroencephalography: Basic Principles, Clinical Applications and Related Fields. Ernst Niedermeyer , Fernando Lopes da Silva , 1983 .
[5] Saskia Haegens,et al. Inter- and intra-individual variability in alpha peak frequency , 2014, NeuroImage.
[6] G. Thut,et al. Mechanisms of selective inhibition in visual spatial attention are indexed by α‐band EEG synchronization , 2007, The European journal of neuroscience.
[7] Diane M. Beck,et al. To See or Not to See: Prestimulus α Phase Predicts Visual Awareness , 2009, The Journal of Neuroscience.
[8] Maarten A. S. Boksem,et al. Effects of mental fatigue on attention: an ERP study. , 2005, Brain research. Cognitive brain research.
[9] Christian Keitel,et al. Stimulus-Driven Brain Oscillations in the Alpha Range: Entrainment of Intrinsic Rhythms or Frequency-Following Response? , 2014, The Journal of Neuroscience.
[10] Gregor Thut,et al. Subjective perceptual experience tracks the neural signature of sensory evidence accumulation during decision formation , 2018, bioRxiv.
[11] Gregor Thut,et al. Prestimulus EEG Power Predicts Conscious Awareness But Not Objective Visual Performance , 2017, eNeuro.
[12] M. Knyazeva,et al. Fine Structure of Posterior Alpha Rhythm in Human EEG: Frequency Components, Their Cortical Sources, and Temporal Behavior , 2017, Scientific Reports.
[13] W. Klimesch,et al. EEG alpha oscillations: The inhibition–timing hypothesis , 2007, Brain Research Reviews.
[14] Michael Schrauf,et al. EEG alpha spindle measures as indicators of driver fatigue under real traffic conditions , 2011, Clinical Neurophysiology.
[15] Bradley Voytek,et al. Nonsinusoidal Beta Oscillations Reflect Cortical Pathophysiology in Parkinson's Disease , 2017, The Journal of Neuroscience.
[16] N. Busch,et al. Moment-to-moment fluctuations in neuronal excitability bias subjective perception rather than decision-making , 2017, bioRxiv.
[17] Iain D. Gilchrist,et al. The contribution of pre-stimulus neural oscillatory activity to spontaneous response time variability , 2015, NeuroImage.
[18] N. Logothetis,et al. The Amplitude and Timing of the BOLD Signal Reflects the Relationship between Local Field Potential Power at Different Frequencies , 2012, The Journal of Neuroscience.
[19] C. Herrmann,et al. Sustained Aftereffect of α-tACS Lasts Up to 70 min after Stimulation , 2016, Front. Hum. Neurosci..
[20] W. Klimesch,et al. Event-related desynchronization in the alpha band and the processing of semantic information. , 1997, Brain research. Cognitive brain research.
[21] J. Gross,et al. Steady-State Visual Evoked Potentials Can Be Explained by Temporal Superposition of Transient Event-Related Responses , 2011, PloS one.
[22] Maximilien Chaumon,et al. Prestimulus Neural Oscillations Inhibit Visual Perception via Modulation of Response Gain , 2014, Journal of Cognitive Neuroscience.
[23] Robert Oostenveld,et al. FieldTrip: Open Source Software for Advanced Analysis of MEG, EEG, and Invasive Electrophysiological Data , 2010, Comput. Intell. Neurosci..
[24] James S. P. Macdonald,et al. Trial-by-Trial Variations in Subjective Attentional State are Reflected in Ongoing Prestimulus EEG Alpha Oscillations , 2011, Front. Psychology.
[25] P. Schyns,et al. Cracking the Code of Oscillatory Activity , 2011, PLoS biology.
[26] A. Kleinschmidt,et al. Intrinsic Connectivity Networks, Alpha Oscillations, and Tonic Alertness: A Simultaneous Electroencephalography/Functional Magnetic Resonance Imaging Study , 2010, The Journal of Neuroscience.
[27] Jonas Obleser,et al. Prestimulus neural alpha power predicts confidence in discriminating identical tones , 2018, bioRxiv.
[28] B. Efron. Better Bootstrap Confidence Intervals , 1987 .
[29] J. Gross,et al. University of Dundee No changes in parieto-occipital alpha during neural phase locking to visual quasi-periodic theta-, alpha-, and beta-band stimulation , 2018 .
[30] J. Schoffelen,et al. Prestimulus Oscillatory Activity in the Alpha Band Predicts Visual Discrimination Ability , 2008, The Journal of Neuroscience.
[31] René Scheeringa,et al. The relationship between oscillatory EEG activity and the laminar-specific BOLD signal , 2016, Proceedings of the National Academy of Sciences.
[32] Wolfgang Klimesch,et al. State-dependent alpha peak frequency shifts: Experimental evidence, potential mechanisms and functional implications , 2017, Neuroscience.
[33] M. Scanziani,et al. Instantaneous Modulation of Gamma Oscillation Frequency by Balancing Excitation with Inhibition , 2009, Neuron.
[34] D H Brainard,et al. The Psychophysics Toolbox. , 1997, Spatial vision.
[35] J. Palva,et al. New vistas for α-frequency band oscillations , 2007, Trends in Neurosciences.
[36] A. Sack,et al. Alpha-Band Rhythms in Visual Task Performance: Phase-Locking by Rhythmic Sensory Stimulation , 2013, PloS one.
[37] A. Wirz-Justice,et al. Power density in theta/alpha frequencies of the waking EEG progressively increases during sustained wakefulness. , 1995, Sleep.
[38] Andreas Kleinschmidt,et al. EEG-correlated fMRI of human alpha activity , 2003, NeuroImage.
[39] Michael X Cohen,et al. Where Does EEG Come From and What Does It Mean? , 2017, Trends in Neurosciences.
[40] T. Sejnowski,et al. Correlated neuronal activity and the flow of neural information , 2001, Nature Reviews Neuroscience.
[41] R. VanRullen,et al. Spontaneous EEG oscillations reveal periodic sampling of visual attention , 2010, Proceedings of the National Academy of Sciences.
[42] Phillip M. Alday,et al. Towards a reliable, automated method of individual alpha frequency (IAF) quantification , 2017, bioRxiv.
[43] S. Jones. When brain rhythms aren't ‘rhythmic’: implication for their mechanisms and meaning , 2016, Current Opinion in Neurobiology.
[44] O. Jensen,et al. Shaping Functional Architecture by Oscillatory Alpha Activity: Gating by Inhibition , 2010, Front. Hum. Neurosci..
[45] Michael X Cohen,et al. Fluctuations in Oscillation Frequency Control Spike Timing and Coordinate Neural Networks , 2014, The Journal of Neuroscience.
[46] Philipp Meisen. TIDAMODEL: Modeling Time Interval Data , 2016 .
[47] R. Oostenveld,et al. Validating the boundary element method for forward and inverse EEG computations in the presence of a hole in the skull , 2002, Human brain mapping.
[48] W. Klimesch. EEG alpha and theta oscillations reflect cognitive and memory performance: a review and analysis , 1999, Brain Research Reviews.
[49] L. M. Ward,et al. Synchronous neural oscillations and cognitive processes , 2003, Trends in Cognitive Sciences.
[50] J. Martinerie,et al. The brainweb: Phase synchronization and large-scale integration , 2001, Nature Reviews Neuroscience.
[51] V. Romei,et al. Information-Based Approaches of Noninvasive Transcranial Brain Stimulation , 2016, Trends in Neurosciences.
[52] Alejandro Lleras,et al. Making Waves in the Stream of Consciousness: Entraining Oscillations in EEG Alpha and Fluctuations in Visual Awareness with Rhythmic Visual Stimulation , 2012, Journal of Cognitive Neuroscience.
[53] Á. Pascual-Leone,et al. α-Band Electroencephalographic Activity over Occipital Cortex Indexes Visuospatial Attention Bias and Predicts Visual Target Detection , 2006, The Journal of Neuroscience.
[54] Michael X. Cohen,et al. Individual Alpha Peak Frequency Predicts 10 Hz Flicker Effects on Selective Attention , 2017, The Journal of Neuroscience.
[55] Sébastien M. Crouzet,et al. Spontaneous Neural Oscillations Bias Perception by Modulating Baseline Excitability , 2017, The Journal of Neuroscience.
[56] Floris P. de Lange,et al. Local Entrainment of Alpha Oscillations by Visual Stimuli Causes Cyclic Modulation of Perception , 2014, The Journal of Neuroscience.
[57] M. Kahana. The Cognitive Correlates of Human Brain Oscillations , 2006, The Journal of Neuroscience.
[58] Daniel Brandeis,et al. Frontal Midline Theta Reflects Individual Task Performance in a Working Memory Task , 2014, Brain Topography.
[59] N. Logothetis,et al. Scaling Brain Size, Keeping Timing: Evolutionary Preservation of Brain Rhythms , 2013, Neuron.
[60] J. Gross,et al. Trial‐by‐trial co‐variation of pre‐stimulus EEG alpha power and visuospatial bias reflects a mixture of stochastic and deterministic effects , 2017, The European journal of neuroscience.
[61] A. Craig,et al. Regional brain wave activity changes associated with fatigue. , 2012, Psychophysiology.
[62] Gregor Thut,et al. Alpha Power Increase After Transcranial Alternating Current Stimulation at Alpha Frequency (α-tACS) Reflects Plastic Changes Rather Than Entrainment , 2015, Brain Stimulation.
[63] Wolfgang Klimesch,et al. Prestimulus amplitudes modulate P1 latencies and evoked traveling alpha waves , 2015, Front. Hum. Neurosci..
[64] H. Berger. Über das Elektrenkephalogramm des Menschen , 1929, Archiv für Psychiatrie und Nervenkrankheiten.
[65] A. Engel,et al. Entrainment of Brain Oscillations by Transcranial Alternating Current Stimulation , 2014, Current Biology.
[66] Alon Sinai,et al. Pain assessment by continuous EEG: Association between subjective perception of tonic pain and peak frequency of alpha oscillations during stimulation and at rest , 2010, Brain Research.
[67] D G Pelli,et al. The VideoToolbox software for visual psychophysics: transforming numbers into movies. , 1997, Spatial vision.
[68] P. Fries. Rhythms for Cognition: Communication through Coherence , 2015, Neuron.
[69] C. Miniussi,et al. Guiding transcranial brain stimulation by EEG/MEG to interact with ongoing brain activity and associated functions: A position paper , 2017, Clinical Neurophysiology.
[70] Mingzhou Ding,et al. Attentional Modulation of Alpha Oscillations in Macaque Inferotemporal Cortex , 2011, The Journal of Neuroscience.
[71] R. Romo,et al. α-Oscillations in the monkey sensorimotor network influence discrimination performance by rhythmical inhibition of neuronal spiking , 2011, Proceedings of the National Academy of Sciences.
[72] J. Gross. Analytical methods and experimental approaches for electrophysiological studies of brain oscillations , 2014, Journal of Neuroscience Methods.
[73] H. Aurlien,et al. EEG background activity described by a large computerized database , 2004, Clinical Neurophysiology.
[74] J. Schoffelen,et al. Dissociated α-band modulations in the dorsal and ventral visual pathways in visuospatial attention and perception. , 2014, Cerebral cortex.
[75] S. Hughes,et al. Thalamic Mechanisms of EEG Alpha Rhythms and Their Pathological Implications , 2005, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.
[76] Romain Bouet,et al. Two Sides of the Same Coin: Distinct Sub-Bands in the α Rhythm Reflect Facilitation and Suppression Mechanisms during Auditory Anticipatory Attention , 2018, eNeuro.
[77] J. Gross,et al. Individual Human Brain Areas Can Be Identified from Their Characteristic Spectral Activation Fingerprints , 2016, PLoS biology.
[78] D. Melcher,et al. Frequency modulation of neural oscillations according to visual task demands , 2018, Proceedings of the National Academy of Sciences.
[79] S. Cole,et al. Brain Oscillations and the Importance of Waveform Shape , 2017, Trends in Cognitive Sciences.
[80] R. Oostenveld,et al. Nonparametric statistical testing of EEG- and MEG-data , 2007, Journal of Neuroscience Methods.
[81] G. Rees,et al. Individual Differences in Alpha Frequency Drive Crossmodal Illusory Perception , 2015, Current Biology.
[82] T. Koike,et al. Hypoxia augments muscle sympathetic neural response to leg cycling. , 2011, American journal of physiology. Regulatory, integrative and comparative physiology.
[83] J. Gross,et al. Stimulus-driven brain rhythms within the alpha band: The attentional-modulation conundrum , 2018, bioRxiv.
[84] R. Oostenveld,et al. Reduced Occipital Alpha Power Indexes Enhanced Excitability Rather than Improved Visual Perception , 2013, The Journal of Neuroscience.
[85] Á. Pascual-Leone,et al. Spontaneous fluctuations in posterior alpha-band EEG activity reflect variability in excitability of human visual areas. , 2008, Cerebral cortex.
[86] G. Thut,et al. Inconsistent Effects of Parietal α-tACS on Pseudoneglect across Two Experiments: A Failed Internal Replication , 2017, Front. Psychol..
[87] Gregor Thut,et al. Visual Benefits in Apparent Motion Displays: Automatically Driven Spatial and Temporal Anticipation Are Partially Dissociated , 2015, PloS one.
[88] L. Parra,et al. Effects of weak transcranial alternating current stimulation on brain activity—a review of known mechanisms from animal studies , 2013, Front. Hum. Neurosci..
[89] O. Jensen,et al. Alpha Oscillations Serve to Protect Working Memory Maintenance against Anticipated Distracters , 2012, Current Biology.
[90] G. Pfurtscheller,et al. Event-related synchronization (ERS) in the alpha band--an electrophysiological correlate of cortical idling: a review. , 1996, International journal of psychophysiology : official journal of the International Organization of Psychophysiology.
[91] H. H. Madden. Comments on the Savitzky-Golay convolution method for least-squares-fit smoothing and differentiation of digital data , 1976 .
[92] Chao Wang,et al. The frequency of alpha oscillations: Task-dependent modulation and its functional significance , 2018, NeuroImage.
[93] Heiko K. Strüder,et al. Higher Balance Task Demands are Associated with an Increase in Individual Alpha Peak Frequency , 2016, Front. Hum. Neurosci..
[94] Saskia Haegens,et al. Laminar Profile and Physiology of the α Rhythm in Primary Visual, Auditory, and Somatosensory Regions of Neocortex , 2015, The Journal of Neuroscience.
[95] Richard J. Davidson,et al. Identifying robust and sensitive frequency bands for interrogating neural oscillations , 2010, NeuroImage.
[96] J. Schoffelen,et al. University of Birmingham Occipital alpha activity during stimulus processing gates the information flow to object-selective cortex , 2014 .
[97] P. Veltink,et al. Observation of time-dependent psychophysical functions and accounting for threshold drifts , 2015, Attention, perception & psychophysics.
[98] W. Klimesch. Alpha-band oscillations, attention, and controlled access to stored information , 2012, Trends in Cognitive Sciences.
[99] Marcia Grabowecky,et al. Simultaneous shape repulsion and global assimilation in the perception of aspect ratio. , 2011, Journal of vision.
[100] Boualem Boashash,et al. Estimating and interpreting the instantaneous frequency of a signal. I. Fundamentals , 1992, Proc. IEEE.
[101] G. Thut,et al. Stimulus- and state-dependence of systematic bias in spatial attention: Additive effects of stimulus-size and time-on-task , 2012, Cortex.
[102] S. Kastner,et al. Communication between Brain Areas Based on Nested Oscillations , 2017, eNeuro.
[103] C. Schroeder,et al. Neuronal Mechanisms and Attentional Modulation of Corticothalamic Alpha Oscillations , 2011, The Journal of Neuroscience.
[104] Allison B. Sekuler,et al. Regional electroencephalogram (EEG) alpha power and asymmetry in older adults: a study of short-term test–retest reliability , 2015, Front. Aging Neurosci..
[105] J. Matias Palva,et al. High-alpha band synchronization across frontal, parietal and visual cortex mediates behavioral and neuronal effects of visuospatial attention , 2017, NeuroImage.
[106] J. Victor,et al. A new statistic for steady-state evoked potentials. , 1991, Electroencephalography and clinical neurophysiology.
[107] P. Fries. A mechanism for cognitive dynamics: neuronal communication through neuronal coherence , 2005, Trends in Cognitive Sciences.
[108] O. Jensen,et al. Modulation of Gamma and Alpha Activity during a Working Memory Task Engaging the Dorsal or Ventral Stream , 2007, The Journal of Neuroscience.
[109] Ingo Fründ,et al. Inference for psychometric functions in the presence of nonstationary behavior. , 2011, Journal of vision.
[110] Frederic M. Stoll,et al. The Effects of Cognitive Control and Time on Frontal Beta Oscillations. , 2016, Cerebral cortex.
[111] R. Desimone,et al. Laminar differences in gamma and alpha coherence in the ventral stream , 2011, Proceedings of the National Academy of Sciences.
[112] C. Schroeder,et al. Neuronal Mechanisms of Cortical Alpha Oscillations in Awake-Behaving Macaques , 2008, The Journal of Neuroscience.
[113] 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.
[114] H. Murakami,et al. Comparison between clinical significance of height-adjusted and weight-adjusted appendicular skeletal muscle mass , 2017, Journal of Physiological Anthropology.
[115] G. Buzsáki,et al. Neuronal Oscillations in Cortical Networks , 2004, Science.
[116] Nick Yeung,et al. The many characters of visual alpha oscillations , 2018, The European journal of neuroscience.
[117] J. Serences,et al. Fluctuations in instantaneous frequency predict alpha amplitude during visual perception , 2017, Nature Communications.
[118] Christoph S. Herrmann,et al. Flicker Regularity Is Crucial for Entrainment of Alpha Oscillations , 2016, Front. Hum. Neurosci..
[119] A. Engel,et al. Spectral fingerprints of large-scale neuronal interactions , 2012, Nature Reviews Neuroscience.
[120] Uri Simonsohn,et al. Two-Lines: A Valid Alternative to the Invalid Testing of U-Shaped Relationships with Quadratic Regressions , 2018 .
[121] C. Gerloff,et al. Enhancing cognitive performance with repetitive transcranial magnetic stimulation at human individual alpha frequency , 2003, The European journal of neuroscience.