What and Where in Visual Working Memory: A Computational Neurodynamical Perspective for Integrating fMRI and Single-Neuron Data
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[1] J. Fuster,et al. Cellular discharge in the dorsolateral prefrontal cortex of the monkey in cognitive tasks , 1982, Experimental Neurology.
[2] D. McCormick,et al. Comparative electrophysiology of pyramidal and sparsely spiny stellate neurons of the neocortex. , 1985, Journal of neurophysiology.
[3] R. Desimone,et al. Selective attention gates visual processing in the extrastriate cortex. , 1985, Science.
[4] H. Spitzer,et al. Increased attention enhances both behavioral and neuronal performance. , 1988, Science.
[5] P. Goldman-Rakic,et al. Mnemonic coding of visual space in the monkey's dorsolateral prefrontal cortex. , 1989, Journal of neurophysiology.
[6] R. Nicoll,et al. Mechanisms generating the time course of dual component excitatory synaptic currents recorded in hippocampal slices , 1990, Neuron.
[7] C. Stevens,et al. Voltage dependence of NMDA-activated macroscopic conductances predicted by single-channel kinetics , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[8] P. Goldman-Rakic,et al. Dissociation of object and spatial processing domains in primate prefrontal cortex. , 1993, Science.
[9] E. Miller,et al. Suppression of visual responses of neurons in inferior temporal cortex of the awake macaque by addition of a second stimulus , 1993, Brain Research.
[10] B. C. Motter. Focal attention produces spatially selective processing in visual cortical areas V1, V2, and V4 in the presence of competing stimuli. , 1993, Journal of neurophysiology.
[11] John Duncan,et al. A neural basis for visual search in inferior temporal cortex , 1993, Nature.
[12] Michael Petrides,et al. Frontal lobes and behaviour , 1994, Current Opinion in Neurobiology.
[13] P S Goldman-Rakic,et al. Functional synergism between putative gamma-aminobutyrate-containing neurons and pyramidal neurons in prefrontal cortex. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[14] M. Jüptner,et al. Review: Does Measurement of Regional Cerebral Blood Flow Reflect Synaptic Activity?—Implications for PET and fMRI , 1995, NeuroImage.
[15] N. Spruston,et al. Dendritic glutamate receptor channels in rat hippocampal CA3 and CA1 pyramidal neurons. , 1995, The Journal of physiology.
[16] J. Grafman,et al. Are the frontal lobes implicated in “planning” functions? Interpreting data from the Tower of Hanoi , 1995, Neuropsychologia.
[17] P. Goldman-Rakic. Cellular basis of working memory , 1995, Neuron.
[18] Paul Antoine Salin,et al. Spontaneous GABAA receptor-mediated inhibitory currents in adult rat somatosensory cortex. , 1996, Journal of neurophysiology.
[19] P. Goldman-Rakic. Regional and cellular fractionation of working memory. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[20] R. Buxton,et al. A Model for the Coupling between Cerebral Blood Flow and Oxygen Metabolism during Neural Stimulation , 1997, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[21] S C Rao,et al. Integration of what and where in the primate prefrontal cortex. , 1997, Science.
[22] A. Destexhe. Kinetic Models of Synaptic Transmission , 1997 .
[23] D. Amit,et al. Model of global spontaneous activity and local structured activity during delay periods in the cerebral cortex. , 1997, Cerebral cortex.
[24] D. Prince,et al. GABAA receptor‐mediated currents in interneurons and pyramidal cells of rat visual cortex , 1998, The Journal of physiology.
[25] Leslie G. Ungerleider,et al. A neural system for human visual working memory. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[26] D. Prince,et al. GABA A receptor-mediated currents in interneurons and pyramidal cells of rat visual cortex , 1998 .
[27] Alessandro Treves,et al. Stable and Rapid Recurrent Processing in Realistic Autoassociative Memories , 1998, Neural Computation.
[28] J. Fellous,et al. A role for NMDA-receptor channels in working memory , 1998, Nature Neuroscience.
[29] E. Rolls,et al. Neural networks and brain function , 1998 .
[30] M. D’Esposito,et al. Functional MRI studies of spatial and nonspatial working memory. , 1998, Brain research. Cognitive brain research.
[31] Germán Mato,et al. On Numerical Simulations of Integrate-and-Fire Neural Networks , 1998, Neural Computation.
[32] B. Horwitz,et al. Integrating electrophysiological and anatomical experimental data to create a large-scale model that simulates a delayed match-to-sample human brain imaging study. , 1998, Cerebral cortex.
[33] R. Buxton,et al. Dynamics of blood flow and oxygenation changes during brain activation: The balloon model , 1998, Magnetic resonance in medicine.
[34] E. Miller,et al. Neural Activity in the Primate Prefrontal Cortex during Associative Learning , 1998, Neuron.
[35] J. Tanji,et al. Task-dependent selectivity of movement-related neuronal activity in the primate prefrontal cortex. , 1998, Journal of neurophysiology.
[36] B R Postle,et al. "What"-Then-Where" in visual working memory: an event-related fMRI study. , 1999, Journal of cognitive neuroscience.
[37] G. Glover. Deconvolution of Impulse Response in Event-Related BOLD fMRI1 , 1999, NeuroImage.
[38] S. Wise,et al. Rule-dependent neuronal activity in the prefrontal cortex , 1999, Experimental Brain Research.
[39] B. Horwitz,et al. Predicting human functional maps with neural net modeling , 1999, Human brain mapping.
[40] R. Desimone,et al. The Role of Neural Mechanisms of Attention in Solving the Binding Problem , 1999, Neuron.
[41] X. Wang,et al. Synaptic Basis of Cortical Persistent Activity: the Importance of NMDA Receptors to Working Memory , 1999, The Journal of Neuroscience.
[42] N. J. Herrod,et al. Redefining the functional organization of working memory processes within human lateral prefrontal cortex , 1999, The European journal of neuroscience.
[43] P S Goldman-Rakic,et al. Association of Storage and Processing Functions in the Dorsolateral Prefrontal Cortex of the Nonhuman Primate , 1999, The Journal of Neuroscience.
[44] M. Posner. The Brain and Emotion , 1999, Nature Medicine.
[45] A. McIntosh,et al. Neural modeling, functional brain imaging, and cognition , 1999, Trends in Cognitive Sciences.
[46] L. Chelazzi. Serial attention mechanisms in visual search: A critical look at the evidence , 1999, Psychological research.
[47] Karl J. Friston,et al. Neural modeling and functional brain imaging: an overview , 2000, Neural Networks.
[48] E. Miller,et al. THE PREFRONTAL CORTEX AND COGNITIVE CONTROL , 2000 .
[49] E. Miller,et al. Task-specific neural activity in the primate prefrontal cortex. , 2000, Journal of neurophysiology.
[50] B. Postle,et al. Evaluating models of the topographical organization of working memory function in frontal cortex with event-related fMRI , 2000, Psychobiology.
[51] E. Miller,et al. The prefontral cortex and cognitive control , 2000, Nature Reviews Neuroscience.
[52] Joaquín M. Fuster,et al. Executive frontal functions , 2000, Experimental Brain Research.
[53] G. Deco,et al. Top-down selective visual attention: A neurodynamical approach , 2001 .
[54] M. Lauritzen,et al. Relationship of Spikes, Synaptic Activity, and Local Changes of Cerebral Blood Flow , 2001, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[55] N. Logothetis,et al. Neurophysiological investigation of the basis of the fMRI signal , 2001, Nature.
[56] K. C. Anderson,et al. Single neurons in prefrontal cortex encode abstract rules , 2001, Nature.
[57] Gustavo Deco,et al. Large-scale neural model for visual attention: integration of experimental single-cell and fMRI data. , 2002, Cerebral cortex.
[58] Gustavo Deco,et al. Computational neuroscience of vision , 2002 .
[59] P. Goldman-Rakic,et al. Sustained Mnemonic Response in the Human Middle Frontal Gyrus during On-Line Storage of Spatial Memoranda , 2002, Journal of Cognitive Neuroscience.
[60] E. Rolls,et al. A unified model of spatial and episodic memory , 2002, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[61] Tai Sing Lee,et al. A unified model of spatial and object attention based on inter-cortical biased competition , 2002, Neurocomputing.
[62] Gustavo Deco,et al. Modular biased‐competition and cooperation: a candidate mechanism for selective working memory , 2004, The European journal of neuroscience.
[63] Xiao-Jing Wang,et al. Effects of Neuromodulation in a Cortical Network Model of Object Working Memory Dominated by Recurrent Inhibition , 2004, Journal of Computational Neuroscience.
[64] David Poeppel,et al. Discrimination and categorization of speech and non-speech sounds in an MEG delayed-match-to-sample study , 2005, NeuroImage.
[65] Adam N Mamelak,et al. Spatial selectivity in human ventrolateral prefrontal cortex , 2005, Nature Neuroscience.
[66] Gustavo Deco,et al. Neural dynamics of cross-modal and cross-temporal associations , 2005, Experimental Brain Research.
[67] F. Gregory Ashby,et al. FROST: A Distributed Neurocomputational Model of Working Memory Maintenance , 2005, Journal of Cognitive Neuroscience.
[68] Barry Horwitz,et al. Investigating the neural basis for functional and effective connectivity. Application to fMRI , 2005, Philosophical Transactions of the Royal Society B: Biological Sciences.
[69] E. Rolls,et al. Attention, short-term memory, and action selection: A unifying theory , 2005, Progress in Neurobiology.
[70] Sufen Chen,et al. Inhibiting change: effects of memory on auditory selective attention. , 2005, Brain research. Cognitive brain research.