Learning to Integrate versus Inhibiting Information Is Modulated by Age
暂无分享,去创建一个
[1] Ivilin Peev Stoianov,et al. Number skills are maintained in healthy ageing , 2014, Cognitive Psychology.
[2] B. Bahrami,et al. Rapid changes in brain structure predict improvements induced by perceptual learning , 2013, NeuroImage.
[3] R. Cohen Kadosh,et al. Transfer of Cognitive Training across Magnitude Dimensions Achieved with Concurrent Brain Stimulation of the Parietal Lobe , 2013, The Journal of Neuroscience.
[4] Camarin E. Rolle,et al. Video game training enhances cognitive control in older adults , 2013, Nature.
[5] Amy Devine,et al. Visual stimulus parameters seriously compromise the measurement of approximate number system acuity and comparative effects between adults and children , 2013, Front. Psychol..
[6] Neil Marlow,et al. Individual Differences in Inhibitory Control, Not Non-Verbal Number Acuity, Correlate with Mathematics Achievement , 2013, PloS one.
[7] Ian H. Robertson,et al. An Evaluation of a Working Memory Training Scheme in Older Adults , 2013, Front. Aging Neurosci..
[8] L. Cohen,et al. Neuroenhancement of the aging brain: Restoring skill acquisition in old subjects , 2013, Annals of neurology.
[9] Bert Reynvoet,et al. Continuous visual properties explain neural responses to nonsymbolic number. , 2012, Psychophysiology.
[10] Justin Halberda,et al. Number sense across the lifespan as revealed by a massive Internet-based sample , 2012, Proceedings of the National Academy of Sciences.
[11] Jessica F Cantlon,et al. Math, monkeys, and the developing brain , 2012, Proceedings of the National Academy of Sciences.
[12] K. R. Ridderinkhof,et al. Brain training in progress: a review of trainability in healthy seniors , 2012, Front. Hum. Neurosci..
[13] Thomas S. Redick,et al. Is working memory training effective? , 2012, Psychological bulletin.
[14] Paul B. Fitzgerald,et al. Improving working memory: Exploring the effect of transcranial random noise stimulation and transcranial direct current stimulation on the dorsolateral prefrontal cortex , 2011, Clinical Neurophysiology.
[15] C. Miniussi,et al. Random Noise Stimulation Improves Neuroplasticity in Perceptual Learning , 2011, The Journal of Neuroscience.
[16] Marinella Cappelletti,et al. Numbers and time doubly dissociate , 2011, Neuropsychologia.
[17] Lindsay E. Farber,et al. The effects of aging on contour discrimination in clutter , 2011, Vision Research.
[18] Gregor Thut,et al. Rhythmic TMS over Parietal Cortex Links Distinct Brain Frequencies to Global versus Local Visual Processing , 2011, Current Biology.
[19] Alexandra B. Morrison,et al. Does working memory training work? The promise and challenges of enhancing cognition by training working memory , 2011, Psychonomic bulletin & review.
[20] B. Butterworth. Foundational numerical capacities and the origins of dyscalculia , 2010, Trends in Cognitive Sciences.
[21] Géza Gergely Ambrus,et al. Cutaneous perception thresholds of electrical stimulation methods: Comparison of tDCS and tRNS , 2010, Clinical Neurophysiology.
[22] Á. Pascual-Leone,et al. Modulation of decision‐making in a gambling task in older adults with transcranial direct current stimulation , 2010, The European journal of neuroscience.
[23] C. Miniussi,et al. The mechanism of transcranial magnetic stimulation in cognition , 2010, Cortex.
[24] Titia Gebuis,et al. Conflict processing of symbolic and non-symbolic numerosity , 2010, Neuropsychologia.
[25] K. R. Ridderinkhof,et al. Aging and the neuroeconomics of decision making: A review , 2009, Cognitive, affective & behavioral neuroscience.
[26] Marinella Cappelletti,et al. Dissociations and interactions between time, numerosity and space processing , 2009, Neuropsychologia.
[27] V. Walsh,et al. The parietal cortex and the representation of time, space, number and other magnitudes , 2009, Philosophical Transactions of the Royal Society B: Biological Sciences.
[28] J. Devlin,et al. Triple Dissociation of Faces, Bodies, and Objects in Extrastriate Cortex , 2009, Current Biology.
[29] Heidi M. Schambra,et al. Noninvasive cortical stimulation enhances motor skill acquisition over multiple days through an effect on consolidation , 2009, Proceedings of the National Academy of Sciences.
[30] Elizabeth M. Brannon,et al. Beyond the number domain , 2009, Trends in Cognitive Sciences.
[31] A. Antal,et al. Increasing Human Brain Excitability by Transcranial High-Frequency Random Noise Stimulation , 2008, The Journal of Neuroscience.
[32] Shu-Chen Li,et al. Working memory plasticity in old age: practice gain, transfer, and maintenance. , 2008, Psychology and aging.
[33] Susanne M. Jaeggi,et al. Impact of working memory training on memory performance in old-old adults. , 2008, Psychology and aging.
[34] Justin Halberda,et al. Individual differences in non-verbal number acuity correlate with maths achievement , 2008, Nature.
[35] L. Cohen,et al. Transcranial direct current stimulation: State of the art 2008 , 2008, Brain Stimulation.
[36] Lars Bäckman,et al. Transfer of Learning After Updating Training Mediated by the Striatum , 2008, Science.
[37] Alvaro Pascual-Leone,et al. Noninvasive brain stimulation for Parkinson’s disease and dystonia , 2008, Neurotherapeutics.
[38] Vince D. Calhoun,et al. Functional neural networks underlying response inhibition in adolescents and adults , 2007, Behavioural Brain Research.
[39] L. Nyberg,et al. The correlative triad among aging, dopamine, and cognition: Current status and future prospects , 2006, Neuroscience & Biobehavioral Reviews.
[40] Rochel Gelman,et al. Sometimes area counts more than number , 2006, Proceedings of the National Academy of Sciences.
[41] Katrin Amunts,et al. The human inferior parietal cortex: Cytoarchitectonic parcellation and interindividual variability , 2006, NeuroImage.
[42] S. MacDonald,et al. Intra-individual variability in behavior: links to brain structure, neurotransmission and neuronal activity , 2006, Trends in Neurosciences.
[43] Ulman Lindenberger,et al. A neurocomputational model of stochastic resonance and aging , 2006, Neurocomputing.
[44] Carmel Mevorach,et al. Opposite biases in salience-based selection for the left and right posterior parietal cortex , 2006, Nature Neuroscience.
[45] E. J. Carter,et al. Functional Imaging of Numerical Processing in Adults and 4-y-Old Children , 2006, PLoS biology.
[46] Kelvin E. Jones,et al. Neuronal variability: noise or part of the signal? , 2005, Nature Reviews Neuroscience.
[47] L. Cohen,et al. Effects of non-invasive cortical stimulation on skilled motor function in chronic stroke. , 2005, Brain : a journal of neurology.
[48] Philippe Pinel,et al. Tuning Curves for Approximate Numerosity in the Human Intraparietal Sulcus , 2004, Neuron.
[49] L. M. Ward,et al. Stochastic resonance and sensory information processing: a tutorial and review of application , 2004, Clinical Neurophysiology.
[50] Vincent Walsh. A theory of magnitude: common cortical metrics of time, space and quantity , 2003, Trends in Cognitive Sciences.
[51] R. Engle,et al. Working-memory capacity and the control of attention: the contributions of goal neglect, response competition, and task set to Stroop interference. , 2003, Journal of experimental psychology. General.
[52] T. Robbins,et al. Stop-signal inhibition disrupted by damage to right inferior frontal gyrus in humans , 2003, Nature Neuroscience.
[53] George W Rebok,et al. Effects of cognitive training interventions with older adults: a randomized controlled trial. , 2002, JAMA.
[54] Bruce D. McCandliss,et al. Testing the Efficiency and Independence of Attentional Networks , 2002, Journal of Cognitive Neuroscience.
[55] G. Glover,et al. Error‐related brain activation during a Go/NoGo response inhibition task , 2001, Human brain mapping.
[56] E. Stein,et al. Right hemispheric dominance of inhibitory control: an event-related functional MRI study. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[57] L Hasher,et al. Synchrony effects in inhibitory control over thought and action. , 1998, Journal of experimental psychology. Human perception and performance.
[58] Kurt Wiesenfeld,et al. Stochastic resonance and the benefits of noise: from ice ages to crayfish and SQUIDs , 1995, Nature.
[59] S. Barrett,et al. The development of perceived structure and attention: evidence from divided and selective attention tasks. , 1991, Journal of experimental child psychology.
[60] J. R. Pomerantz,et al. Emergent features, attention, and perceptual glue in visual form perception. , 1989, Journal of experimental psychology. Human perception and performance.
[61] A. Henik,et al. Is three greater than five: The relation between physical and semantic size in comparison tasks , 1982, Memory & cognition.
[62] A T Welford,et al. Signal, Noise, Performance, and Age , 1981, Human factors.
[63] D. Navon. Forest before trees: The precedence of global features in visual perception , 1977, Cognitive Psychology.
[64] W. R. Garner,et al. Effects of focusing strategy on speeded classification with grouping, filtering, and condensation tasks , 1972 .
[65] A. Siegel. Variables affecting incidental learning in children. , 1968, Child development.
[66] R. Bruno,et al. The fantastic plastic brain. , 2012, Advances in mind-body medicine.
[67] Kathy A. Low,et al. Performance gains from directed training do not transfer to untrained tasks. , 2012, Acta psychologica.
[68] Denise C. Park,et al. The adaptive brain: aging and neurocognitive scaffolding. , 2009, Annual review of psychology.
[69] Ulman Lindenberger,et al. Cognitive plasticity in adulthood and old age: gauging the generality of cognitive intervention effects. , 2009, Restorative neurology and neuroscience.
[70] C. Lustig,et al. Inhibitory Mechanisms and the Control of Attention , 2007 .
[71] M. Merzenich,et al. Brain plasticity and functional losses in the aged: scientific bases for a novel intervention. , 2006, Progress in brain research.
[72] J. Ridley. Studies of Interference in Serial Verbal Reactions , 2001 .
[73] G. Smith,et al. Die Cytoarchitektonik der Hirnrinde des erwachsenen Menschen. , 1927 .
[74] F. Hummel,et al. Frontiers in Aging Neuroscience Aging Neuroscience Review Article Non-invasive Brain Stimulation , 2022 .