Neural, physiological, and behavioral correlates of visuomotor cognitive load
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J. C. Gerdes | Jennifer L Bruno | Joseph M Baker | Andrew Gundran | Lene K Harbott | S M Hadi Hosseini | J Christian Gerdes | Allan L Reiss | Lene K. Harbott | A. Reiss | J. M. Baker | S. M. Hosseini | J. Bruno | Andrew Gundran | J. Gerdes
[1] J. Gottlieb. From Thought to Action: The Parietal Cortex as a Bridge between Perception, Action, and Cognition , 2007, Neuron.
[2] T. Bussey,et al. Role of prefrontal cortex in a network for arbitrary visuomotor mapping , 2000, Experimental Brain Research.
[3] U. Halsband,et al. Motor learning in man: A review of functional and clinical studies , 2006, Journal of Physiology-Paris.
[4] Xu Cui,et al. Functional near infrared spectroscopy (NIRS) signal improvement based on negative correlation between oxygenated and deoxygenated hemoglobin dynamics , 2010, NeuroImage.
[5] David A. Boas,et al. A spatial-temporal comparison of fMRI and NIRS hemodynamic responses to motor stimuli in adult humans , 2005, SPIE BiOS.
[6] David A. Boas,et al. Motion artifacts in functional near-infrared spectroscopy: A comparison of motion correction techniques applied to real cognitive data , 2014, NeuroImage.
[7] Eduardo E. Benarroch,et al. The locus ceruleus norepinephrine system , 2009, Neurology.
[8] R. Knight,et al. Frontal-parietal event-related potential changes associated with practising a novel visuomotor task. , 2002, Brain research. Cognitive brain research.
[9] Ippeita Dan,et al. Stable and convenient spatial registration of stand-alone NIRS data through anchor-based probabilistic registration , 2012, Neuroscience Research.
[10] H. Damasio,et al. Parietal damage impairs learning of a visuomotor tracking skill , 2015, Neuropsychologia.
[11] Masako Okamoto,et al. Three-dimensional probabilistic anatomical cranio-cerebral correlation via the international 10–20 system oriented for transcranial functional brain mapping , 2004, NeuroImage.
[12] Aaron T. Buss,et al. Validating an image-based fNIRS approach with fMRI and a working memory task , 2017, NeuroImage.
[13] Jörn Diedrichsen,et al. Neural substrates of visuomotor learning based on improved feedback control and prediction , 2008, NeuroImage.
[14] Rachael D. Seidler,et al. Contributions of Spatial Working Memory to Visuomotor Learning , 2010, Journal of Cognitive Neuroscience.
[15] Kae Nakamura,et al. Central mechanisms of motor skill learning , 2002, Current Opinion in Neurobiology.
[16] J. Culham,et al. The role of parietal cortex in visuomotor control: What have we learned from neuroimaging? , 2006, Neuropsychologia.
[17] Gereon R. Fink,et al. Human medial intraparietal cortex subserves visuomotor coordinate transformation , 2004, NeuroImage.
[18] S. Kinomura,et al. Activity in the parietal area during visuomotor learning with optical rotation , 1997, Neuroreport.
[19] D. Boas,et al. HomER: a review of time-series analysis methods for near-infrared spectroscopy of the brain. , 2009, Applied optics.
[20] Armin Thron,et al. An fMRI approach to particularize the frontoparietal network for visuomotor action monitoring: Detection of incongruence between test subjects’ actions and resulting perceptions , 2007, NeuroImage.
[21] N. Unsworth,et al. Pupillary correlates of lapses of sustained attention , 2016, Cognitive, affective & behavioral neuroscience.
[22] Á. Pascual-Leone,et al. Prefrontal lesions impair the implicit and explicit learning of sequences on visuomotor tasks , 2002, Experimental Brain Research.
[23] Markus H. Sneve,et al. Pupil size signals mental effort deployed during multiple object tracking and predicts brain activity in the dorsal attention network and the locus coeruleus. , 2014, Journal of vision.
[24] R. Gentili,et al. Functional near-infrared spectroscopy-based correlates of prefrontal cortical dynamics during a cognitive-motor executive adaptation task , 2013, Front. Hum. Neurosci..
[25] O. Hikosaka,et al. Transition of Brain Activation from Frontal to Parietal Areas in Visuomotor Sequence Learning , 1998, The Journal of Neuroscience.
[26] D. Vaillancourt,et al. Neural Basis for the Processes That Underlie Visually-guided and Internally-guided Force Control in Humans , 2003 .
[27] Eliot Hazeltine,et al. Dissociable Contributions of Prefrontal and Parietal Cortices to Response Selection , 2002, NeuroImage.
[28] E. Granholm,et al. Pupillary responses and processing resources on the visual backward masking task. , 2001, Psychophysiology.
[29] R. Andersen,et al. The posterior parietal cortex: Sensorimotor interface for the planning and online control of visually guided movements , 2006, Neuropsychologia.
[30] P. Roland,et al. Functional anatomy of reaching and visuomotor learning: a positron emission tomography study. , 1995, Cerebral cortex.
[31] David A. Boas,et al. A temporal comparison of BOLD, ASL, and NIRS hemodynamic responses to motor stimuli in adult humans , 2006, NeuroImage.
[32] Opher Donchin,et al. Dissociating Visual and Motor Directional Selectivity Using Visuomotor Adaptation , 2015, The Journal of Neuroscience.
[33] R. O’Connell,et al. Pupil diameter covaries with BOLD activity in human locus coeruleus , 2014, Human brain mapping.
[34] Greg J Siegle,et al. Use of concurrent pupil dilation assessment to inform interpretation and analysis of fMRI data , 2003, NeuroImage.
[35] Susan Wray,et al. QUANTIFICATION OF CEREBRAL OXYGENATION AND HAEMODYNAMICS IN SICK NEWBORN INFANTS BY NEAR INFRARED SPECTROPHOTOMETRY , 1986, The Lancet.
[36] T. Wheatley,et al. Pupil Dilation Dynamics Track Attention to High-Level Information , 2014, PloS one.
[37] Ravi S. Menon,et al. Learning-related fMRI activation associated with a rotational visuo-motor transformation. , 2005, Brain research. Cognitive brain research.
[38] S. Klein,et al. Pupil dilation during visual target detection. , 2010, Journal of vision.
[39] V. Romei,et al. Multisensory signalling enhances pupil dilation , 2016, Scientific Reports.
[40] P. Matthews,et al. Changing brain networks for visuomotor control with increased movement automaticity. , 2004, Journal of neurophysiology.
[41] Stefan M. Wierda,et al. Pupil dilation deconvolution reveals the dynamics of attention at high temporal resolution , 2012, Proceedings of the National Academy of Sciences.