Mental Fatigue and Functional Near-Infrared Spectroscopy (fNIRS) – Based Assessment of Cognitive Performance After Mild Traumatic Brain Injury
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Birgitta Johansson | H. Kuhn | B. Johansson | Simon Skau | L. Bunketorp-Käll | Simon Skau | Lina Bunketorp-Käll | Hans Georg Kuhn
[1] David A. Boas,et al. Improved recovery of the hemodynamic response in diffuse optical imaging using short optode separations and state-space modeling , 2011, NeuroImage.
[2] Hellmuth Obrig,et al. Separability and cross talk: optimizing dual wavelength combinations for near-infrared spectroscopy of the adult head , 2004, NeuroImage.
[3] Marika C. Möller,et al. Fatigue and Cognitive Fatigability in Mild Traumatic Brain Injury are Correlated with Altered Neural Activity during Vigilance Test Performance , 2017, Front. Neurol..
[4] D. Wade,et al. The Rivermead Post Concussion Symptoms Questionnaire: a measure of symptoms commonly experienced after head injury and its reliability , 1995, Journal of Neurology.
[5] Ann-Christine Ehlis,et al. Application of functional near-infrared spectroscopy in psychiatry , 2014, NeuroImage.
[6] Frédéric Lesage,et al. A fNIRS investigation of switching and inhibition during the modified Stroop task in younger and older adults , 2013, NeuroImage.
[7] Marika C. Möller,et al. Post mTBI fatigue is associated with abnormal brain functional connectivity , 2016, Scientific Reports.
[8] Raymond Y. Cho,et al. Context Specificity of Post-Error and Post-Conflict Cognitive Control Adjustments , 2014, PloS one.
[9] Tobias Egner,et al. Separate conflict-specific cognitive control mechanisms in the human brain , 2007, NeuroImage.
[10] G. Wylie,et al. The neural correlates of cognitive fatigue in traumatic brain injury using functional MRI , 2009, Brain injury.
[11] Birgitta Johansson,et al. Long-Lasting Mental Fatigue After Traumatic Brain Injury – A Major Problem Most Often Neglected Diagnostic Criteria, Assessment, Relation to Emotional and Cognitive Problems, Cellular Background, and Aspects on Treatment , 2014 .
[12] B. Onaral,et al. Verbal working memory impairments following traumatic brain injury: an fNIRS investigation , 2014, Brain Imaging and Behavior.
[13] Adam P. Gibson,et al. A frequency multiplexed near infrared topography system for imaging functional activity in the brain , 2005 .
[14] Ippeita Dan,et al. Positive effect of acute mild exercise on executive function via arousal-related prefrontal activations: An fNIRS study , 2014, NeuroImage.
[15] L. Rönnbäck,et al. Mental fatigue and impaired information processing after mild and moderate traumatic brain injury , 2009, Brain injury.
[16] Marco Ferrari,et al. A brief review on the history of human functional near-infrared spectroscopy (fNIRS) development and fields of application , 2012, NeuroImage.
[17] Weidong Jiao,et al. The Maximum Eigenvalue of the Brain Functional Network Adjacency Matrix: Meaning and Application in Mental Fatigue Evaluation , 2020, Brain sciences.
[18] L. Rönnbäck,et al. Novel computer tests for identification of mental fatigue after traumatic brain injury. , 2015, NeuroRehabilitation.
[19] Hiroki Sato,et al. A NIRS–fMRI investigation of prefrontal cortex activity during a working memory task , 2013, NeuroImage.
[20] Tobias Egner,et al. The neural correlates and functional integration of cognitive control in a Stroop task , 2005, NeuroImage.
[21] P. Azouvi,et al. Divided attention and mental effort after severe traumatic brain injury , 2004, Neuropsychologia.
[22] Frithjof Kruggel,et al. Near‐infrared spectroscopy can detect brain activity during a color–word matching Stroop task in an event‐related design , 2002, Human brain mapping.
[23] G. Wylie,et al. Cognitive fatigue in individuals with traumatic brain injury is associated with caudate activation , 2017, Scientific Reports.
[24] T. J. Huppert,et al. Brain activation during neurocognitive testing using functional near-infrared spectroscopy in patients following concussion compared to healthy controls , 2014, Brain Imaging and Behavior.
[25] Sharon L. Thompson-Schill,et al. Tracking competition and cognitive control during language comprehension with multi-voxel pattern analysis , 2017, Brain and Language.
[26] D. Delpy,et al. A frequency multiplexed near infra-red topography system for imaging functional activation in the brain , 2004 .
[27] H. Malmgren,et al. Organic Mental Disorders as Hypothetical Pathogenetic Processes , 1993, Acta psychiatrica Scandinavica. Supplementum.
[28] D. Westwood,et al. Mild Traumatic Brain Injury (mTBI) and chronic cognitive impairment: A scoping review , 2017, PloS one.
[29] Archana K. Singh,et al. Exploring the false discovery rate in multichannel NIRS , 2006, NeuroImage.
[30] M. Dijkers,et al. Fatigue After Traumatic Brain Injury and Its Impact on Participation and Quality of Life , 2008, The Journal of head trauma rehabilitation.
[31] P. Azouvi,et al. Subjective Fatigue, Mental Effort, and Attention Deficits After Severe Traumatic Brain Injury , 2009, Neurorehabilitation and neural repair.
[32] L. Rönnbäck,et al. A self-assessment questionnaire for mental fatigue and related symptoms after neurological disorders and injuries , 2010, Brain injury.
[33] K. Höllig,et al. Matlab® , 2019, Aufgaben und Lösungen zur Höheren Mathematik 1.
[34] M. Schlossberg. The Halstead-Reitan Neuropsychological Test Battery: Theory and Clinical Interpretation. , 1986 .
[35] Active inhibition of task-irrelevant sounds and its neural basis in patients with attention deficits after traumatic brain injury , 2014, Brain injury.
[36] Sungho Tak,et al. NIRS-SPM: Statistical parametric mapping for near-infrared spectroscopy , 2009, NeuroImage.
[37] A. Ptito,et al. Persistent Postconcussive Symptoms Are Accompanied by Decreased Functional Brain Oxygenation. , 2015, The Journal of neuropsychiatry and clinical neurosciences.
[38] R. Marois,et al. The attentional blink: A review of data and theory , 2009, Attention, perception & psychophysics.
[39] I. Dan,et al. Acute moderate exercise enhances compensatory brain activation in older adults , 2012, Neurobiology of Aging.
[40] S. Haber,et al. The cortico-basal ganglia integrative network: The role of the thalamus , 2009, Brain Research Bulletin.
[41] T. Hatta,et al. Oxyhemoglobin changes during cognitive rehabilitation after traumatic brain injury using near infrared spectroscopy. , 2013, Neurologia medico-chirurgica.
[42] S. Strandberg,et al. Mental fatigue and impaired cognitive function after an acquired brain injury , 2018, Brain and behavior.
[43] A. Chaudhuri,et al. Fatigue in neurological disorders , 2004, The Lancet.
[44] Sabrina Brigadoi,et al. How short is short? Optimum source–detector distance for short-separation channels in functional near-infrared spectroscopy , 2015, Neurophotonics.
[45] Katherine L. Roberts,et al. Examining a Supramodal Network for Conflict Processing: A Systematic Review and Novel Functional Magnetic Resonance Imaging Data for Related Visual and Auditory Stroop Tasks , 2008, Journal of Cognitive Neuroscience.
[46] R. Raedt,et al. Dorsolateral prefrontal cortex and Stroop performance: Tackling the lateralization , 2009, Psychonomic bulletin & review.
[47] Hellmuth Obrig,et al. NIRS in clinical neurology — a ‘promising’ tool? , 2014, NeuroImage.
[48] D. Boas,et al. HomER: a review of time-series analysis methods for near-infrared spectroscopy of the brain. , 2009, Applied optics.
[49] Chris C. Duszynski,et al. Reduced Functional Connectivity in Adults with Persistent Post-Concussion Symptoms: A Functional Near-Infrared Spectroscopy Study , 2018, Journal of neurotrauma.
[50] Kazuo Hiraki,et al. Neurobehavioral and hemodynamic evaluation of Stroop and reverse Stroop interference in children with attention-deficit/hyperactivity disorder , 2014, Brain and Development.
[51] L. Nyberg,et al. Using Functional Magnetic Resonance Imaging to Detect Chronic Fatigue in Patients With Previous Traumatic Brain Injury: Changes Linked to Altered Striato-Thalamic-Cortical Functioning , 2017, The Journal of head trauma rehabilitation.
[52] K. Matsukawa,et al. Dynamic exercise improves cognitive function in association with increased prefrontal oxygenation , 2013, The Journal of Physiological Sciences.
[53] Archana K. Singh,et al. Spatial registration of multichannel multi-subject fNIRS data to MNI space without MRI , 2005, NeuroImage.
[54] J. Ponsford,et al. Vigilance and fatigue following traumatic brain injury , 2006, Journal of the International Neuropsychological Society.
[55] M. Dijkers,et al. Objective Measurement of Fatigue Following Traumatic Brain Injury , 2008, The Journal of head trauma rehabilitation.
[56] A. Afifi,et al. Sustained outcomes following mild traumatic brain injury: Results of a five-emergency department longitudinal study , 2014, Brain injury.
[57] P. Peigneux,et al. Cognitive Fatigue, Sleep and Cortical Activity in Multiple Sclerosis Disease. A Behavioral, Polysomnographic and Functional Near-Infrared Spectroscopy Investigation , 2018, Front. Hum. Neurosci..
[58] T. Egner. Multiple conflict-driven control mechanisms in the human brain , 2008, Trends in Cognitive Sciences.
[59] A. Kaye,et al. Traumatic brain injury and long-term quality of life: findings from an Australian study. , 2009, Journal of neurotrauma.
[60] U. Björnstig,et al. Long-term follow-up of patients with mild traumatic brain injury: a mixed-method study. , 2013, Journal of rehabilitation medicine.
[61] Birgitta Johansson,et al. Evaluation of the Mental Fatigue Scale and its relation to Cognitive and Emotional Functioning after Traumatic Brain Injury or Stroke , 2013 .
[62] F. Irani,et al. Functional Near Infrared Spectroscopy (fNIRS): An Emerging Neuroimaging Technology with Important Applications for the Study of Brain Disorders , 2007, The Clinical neuropsychologist.
[63] fNIRS-based investigation of the Stroop task after TBI , 2016, Brain Imaging and Behavior.
[64] J. Ponsford,et al. Selective attention deficits and subjective fatigue following traumatic brain injury. , 2006, Neuropsychology.
[65] Lucas R. Trambaiolli,et al. Imaging Brain Function with Functional Near-Infrared Spectroscopy in Unconstrained Environments , 2017, Front. Hum. Neurosci..
[66] D. Yves von Cramon,et al. Prefrontal activation due to Stroop interference increases during development—an event-related fNIRS study , 2004, NeuroImage.
[67] Norman W. Park,et al. Divided attention impairments after traumatic brain injury , 1999, Neuropsychologia.
[68] J. Borg,et al. Prognosis for mild traumatic brain injury: results of the WHO Collaborating Centre Task Force on Mild Traumatic Brain Injury. , 2004, Journal of rehabilitation medicine.
[69] Frans F. Jo¨bsis-vanderVliet. Discovery of the near-infrared window into the body and the early development of near-infrared spectroscopy. , 1999 .
[70] J. Ponsford,et al. Long-term outcomes after uncomplicated mild traumatic brain injury: a comparison with trauma controls. , 2011, Journal of neurotrauma.
[71] M. Maybery,et al. Neuropsychological Studies of Mild Traumatic Brain Injury: A Meta-Analytic Review of Research Since 1995 , 2005, Journal of clinical and experimental neuropsychology.
[72] J. Borg,et al. Prevalence and structure of symptoms at 3 months after mild traumatic brain injury in a national cohort , 2009, Brain injury.
[73] J. Leon-Carrion,et al. The hemodynamics of cognitive control: The level of concentration of oxygenated hemoglobin in the superior prefrontal cortex varies as a function of performance in a modified Stroop task , 2008, Behavioural Brain Research.
[74] H. Dhaliwal,et al. The International Incidence of Traumatic Brain Injury: A Systematic Review and Meta-Analysis , 2016, Canadian Journal of Neurological Sciences / Journal Canadien des Sciences Neurologiques.
[75] B. Onaral,et al. FUNCTIONAL NEAR-INFRARED SPECTROSCOPY–BASED ASSESSMENT OF ATTENTION IMPAIRMENTS AFTER TRAUMATIC BRAIN INJURY , 2011 .