The storage and recall of memories in the hippocampo-cortical system

[1]  J. Williamson The art of memory , 2019, The Lancet Neurology.

[2]  E. Buffalo,et al.  Spatial responses, immediate experience, and memory in the monkey hippocampus , 2017, Current Opinion in Behavioral Sciences.

[3]  John P. Aggleton,et al.  Hippocampal–diencephalic–cingulate networks for memory and emotion: An anatomical guide , 2017, Brain and neuroscience advances.

[4]  E. Rolls A scientific theory of Ars Memoriae: Spatial view cells in a continuous attractor network with linked items , 2017, Hippocampus.

[5]  J. Duhamel,et al.  Gaze-informed, task-situated representation of space in primate hippocampus during virtual navigation , 2017, PLoS biology.

[6]  E. Rolls Pattern separation, completion, and categorisation in the hippocampus and neocortex , 2016, Neurobiology of Learning and Memory.

[7]  E. Maguire,et al.  Anterior hippocampus: the anatomy of perception, imagination and episodic memory , 2016, Nature Reviews Neuroscience.

[8]  Mark P. Brandon,et al.  During Running in Place, Grid Cells Integrate Elapsed Time and Distance Run , 2015, Neuron.

[9]  Marc W Howard,et al.  Time and space in the hippocampus , 2015, Brain Research.

[10]  I. Fried,et al.  Rapid Encoding of New Memories by Individual Neurons in the Human Brain , 2015, Neuron.

[11]  E. Buffalo Bridging the gap between spatial and mnemonic views of the hippocampal formation , 2015, Hippocampus.

[12]  David C Rowland,et al.  Place cells, grid cells, and memory. , 2015, Cold Spring Harbor perspectives in biology.

[13]  E. Rolls,et al.  Stochastic cortical neurodynamics underlying the memory and cognitive changes in aging , 2015, Neurobiology of Learning and Memory.

[14]  E. Rolls,et al.  A computational theory of hippocampal function, and tests of the theory: New developments , 2015, Neuroscience & Biobehavioral Reviews.

[15]  E. Rolls Limbic systems for emotion and for memory, but no single limbic system , 2015, Cortex.

[16]  S. Mizumori,et al.  A role for the lateral dorsal tegmentum in memory and decision neural circuitry , 2015, Neurobiology of Learning and Memory.

[17]  H. Eichenbaum Time cells in the hippocampus: a new dimension for mapping memories , 2014, Nature Reviews Neuroscience.

[18]  R. Quian Quiroga,et al.  Single-cell recordings in the human medial temporal lobe , 2014, Journal of anatomy.

[19]  T. Bonhoeffer,et al.  Grid cells and cortical representation , 2014, Nature Reviews Neuroscience.

[20]  J. O’Keefe,et al.  Space in the brain: how the hippocampal formation supports spatial cognition , 2014, Philosophical Transactions of the Royal Society B: Biological Sciences.

[21]  Tomonori Takeuchi,et al.  The synaptic plasticity and memory hypothesis: encoding, storage and persistence , 2014, Philosophical Transactions of the Royal Society B: Biological Sciences.

[22]  P. Fossati Imaging autobiographical memory , 2013, Dialogues in clinical neuroscience.

[23]  E. Rolls Emotion and decision making explained , 2013 .

[24]  Edmund T. Rolls,et al.  The mechanisms for pattern completion and pattern separation in the hippocampus , 2013, Front. Syst. Neurosci..

[25]  Xueqi Cheng,et al.  A Network for Scene Processing in the Macaque Temporal Lobe , 2013, Neuron.

[26]  Alessandro Treves,et al.  The spatial representations acquired in CA3 by self-organizing recurrent connections , 2013, Front. Cell. Neurosci..

[27]  E. Rolls A quantitative theory of the functions of the hippocampal CA3 network in memory , 2013, Front. Cell. Neurosci..

[28]  Benjamin J. Kraus,et al.  Hippocampal “Time Cells”: Time versus Path Integration , 2013, Neuron.

[29]  Sen Cheng,et al.  The CRISP theory of hippocampal function in episodic memory , 2013, Front. Neural Circuits.

[30]  Nathaniel J. Killian,et al.  A map of visual space in the primate entorhinal cortex , 2012, Nature.

[31]  Indre V. Viskontas,et al.  Ensembles of human MTL neurons “jump back in time” in response to a repeated stimulus , 2012, Hippocampus.

[32]  R. Quiroga Concept cells: the building blocks of declarative memory functions , 2012, Nature Reviews Neuroscience.

[33]  Edmund T. Rolls,et al.  Advantages of dilution in the connectivity of attractor networks in the brain , 2012, BICA 2012.

[34]  Edmund T. Rolls,et al.  Invariant Visual Object and Face Recognition: Neural and Computational Bases, and a Model, VisNet , 2012, Front. Comput. Neurosci..

[35]  Ehren L. Newman,et al.  Cholinergic modulation of cognitive processing: insights drawn from computational models , 2012, Front. Behav. Neurosci..

[36]  Eric A. Zilli,et al.  Models of Grid Cell Spatial Firing Published 2005–2011 , 2012, Front. Neural Circuits.

[37]  G. Winocur,et al.  The hippocampus is involved in mental navigation for a recently learned, but not a highly familiar environment: A longitudinal fMRI study , 2012, Hippocampus.

[38]  Raymond P. Kesner,et al.  Spatial, Temporal, and Associative Behavioral Functions Associated with Different Subregions of the Hippocampus , 2012 .

[39]  Joshua P. Neunuebel,et al.  Spatial Firing Correlates of Physiologically Distinct Cell Types of the Rat Dentate Gyrus , 2012, The Journal of Neuroscience.

[40]  Uğur M Erdem,et al.  A goal‐directed spatial navigation model using forward trajectory planning based on grid cells , 2012, The European journal of neuroscience.

[41]  S. Tonegawa,et al.  Young Dentate Granule Cells Mediate Pattern Separation, whereas Old Granule Cells Facilitate Pattern Completion , 2012, Cell.

[42]  Edmund T. Rolls,et al.  Glutamate, obsessive–compulsive disorder, schizophrenia, and the stability of cortical attractor neuronal networks , 2012, Pharmacology Biochemistry and Behavior.

[43]  Kathryn J. Jeffery,et al.  Place Cells, Grid Cells, Attractors, and Remapping , 2011, Neural plasticity.

[44]  Edmund T. Rolls,et al.  The neuronal encoding of information in the brain , 2011, Progress in Neurobiology.

[45]  A. Treves,et al.  Theta-paced flickering between place-cell maps in the hippocampus , 2011, Nature.

[46]  Leslie G. Ungerleider,et al.  Scene-Selective Cortical Regions in Human and Nonhuman Primates , 2011, The Journal of Neuroscience.

[47]  Christopher J. Lee Open Peer Review by a Selected-Papers Network , 2011, Front. Comput. Neurosci..

[48]  Lisa M. Giocomo,et al.  Computational Models of Grid Cells , 2011, Neuron.

[49]  H. Eichenbaum,et al.  Hippocampal “Time Cells” Bridge the Gap in Memory for Discontiguous Events , 2011, Neuron.

[50]  L. Squire,et al.  The cognitive neuroscience of human memory since H.M. , 2011, Annual review of neuroscience.

[51]  J. Aimone,et al.  Modeling new neuron function: a history of using computational neuroscience to study adult neurogenesis , 2011, The European journal of neuroscience.

[52]  Mathew E. Diamond,et al.  Hippocampal Representation of Touch-Guided Behavior in Rats: Persistent and Independent Traces of Stimulus and Reward Location , 2011, PloS one.

[53]  E. Rolls A computational theory of episodic memory formation in the hippocampus , 2010, Behavioural Brain Research.

[54]  G. Collingridge,et al.  Long-term depression in the CNS , 2010, Nature Reviews Neuroscience.

[55]  Bruce L McNaughton,et al.  Attractor-map versus autoassociation based attractor dynamics in the hippocampal network. , 2010, Journal of neurophysiology.

[56]  Stéphanie Daumas,et al.  Activation of metabotropic glutamate receptor type 2/3 supports the involvement of the hippocampal mossy fiber pathway on contextual fear memory consolidation. , 2009, Learning & memory.

[57]  Alessandro Treves,et al.  How Informative Are Spatial CA3 Representations Established by the Dentate Gyrus? , 2009, PLoS Comput. Biol..

[58]  D. Amaral,et al.  Intrinsic connections of the macaque monkey hippocampal formation: II. CA3 connections , 2009, The Journal of comparative neurology.

[59]  L. Saksida,et al.  A Functional Role for Adult Hippocampal Neurogenesis in Spatial Pattern Separation , 2009, Science.

[60]  A D Redish,et al.  Prediction, sequences and the hippocampus , 2009, Philosophical Transactions of the Royal Society B: Biological Sciences.

[61]  D. Amaral,et al.  The Hippocampal Formation , 2009 .

[62]  Natalie L. M. Cappaert,et al.  The anatomy of memory: an interactive overview of the parahippocampal–hippocampal network , 2009, Nature Reviews Neuroscience.

[63]  M. Witter,et al.  A Specific Role of the Human Hippocampus in Recall of Temporal Sequences , 2009, The Journal of Neuroscience.

[64]  Emery Brown,et al.  Trial Outcome and Associative Learning Signals in the Monkey Hippocampus , 2009, Neuron.

[65]  P. Lavenex,et al.  Spatial memory and the monkey hippocampus: Not all space is created equal , 2009, Hippocampus.

[66]  Alessandro Treves,et al.  The emergence of grid cells: Intelligent design or just adaptation? , 2008, Hippocampus.

[67]  Michael R. Hunsaker,et al.  The CA3 subregion of the hippocampus is critical for episodic memory processing by means of relational encoding in rats. , 2008, Behavioral neuroscience.

[68]  Edmund T Rolls,et al.  Spatial scene representations formed by self‐organizing learning in a hippocampal extension of the ventral visual system , 2008, The European journal of neuroscience.

[69]  Xiao-Jing Wang Decision Making in Recurrent Neuronal Circuits , 2008, Neuron.

[70]  I. Fried,et al.  Internally Generated Reactivation of Single Neurons in Human Hippocampus During Free Recall , 2008, Science.

[71]  E. Dere Handbook of Episodic Memory , 2008 .

[72]  E. Rolls,et al.  Computational models of schizophrenia and dopamine modulation in the prefrontal cortex , 2008, Nature Reviews Neuroscience.

[73]  G. Buzsáki,et al.  A neural coding scheme formed by the combined function of gamma and theta oscillations. , 2008, Schizophrenia bulletin.

[74]  Gustavo Deco,et al.  An attractor hypothesis of obsessive–compulsive disorder , 2008, The European journal of neuroscience.

[75]  E. Rolls,et al.  Spatial view cells in the primate hippocampus and memory recall. , 2008, Reviews in the neurosciences.

[76]  N. Burgess Spatial Cognition and the Brain , 2008, Annals of the New York Academy of Sciences.

[77]  Michael R. Hunsaker,et al.  The interactions and dissociations of the dorsal hippocampus subregions: how the dentate gyrus, CA3, and CA1 process spatial information. , 2008, Behavioral neuroscience.

[78]  Stefan Leutgeb,et al.  Pattern separation, pattern completion, and new neuronal codes within a continuous CA3 map. , 2007, Learning & memory.

[79]  Gustavo Deco,et al.  A Dynamical Systems Hypothesis of Schizophrenia , 2007, PLoS Comput. Biol..

[80]  M. Witter Intrinsic and extrinsic wiring of CA3: indications for connectional heterogeneity. , 2007, Learning & memory.

[81]  E. Rolls Memory, Attention, and Decision-Making: A unifying computational neuroscience approach , 2007 .

[82]  Lisa M. Giocomo,et al.  Neuromodulation by Glutamate and Acetylcholine can Change Circuit Dynamics by Regulating the Relative Influence of Afferent Input and Excitatory Feedback , 2007, Molecular Neurobiology.

[83]  M. Wilson,et al.  Dentate Gyrus NMDA Receptors Mediate Rapid Pattern Separation in the Hippocampal Network , 2007, Science.

[84]  Edmund T. Rolls,et al.  Neuronal selectivity, population sparseness, and ergodicity in the inferior temporal visual cortex , 2007, Biological Cybernetics.

[85]  M. Moser,et al.  Pattern Separation in the Dentate Gyrus and CA3 of the Hippocampus , 2007, Science.

[86]  Bruce L. McNaughton,et al.  Path integration and the neural basis of the 'cognitive map' , 2006, Nature Reviews Neuroscience.

[87]  E. Rolls,et al.  A computational theory of hippocampal function, and empirical tests of the theory , 2006, Progress in Neurobiology.

[88]  A. Cavanna,et al.  The precuneus: a review of its functional anatomy and behavioural correlates. , 2006, Brain : a journal of neurology.

[89]  Howard Eichenbaum,et al.  The Role of CA3 Hippocampal NMDA Receptors in Paired Associate Learning , 2006, The Journal of Neuroscience.

[90]  Simon M Stringer,et al.  Entorhinal cortex grid cells can map to hippocampal place cells by competitive learning , 2006, Network.

[91]  E. Rolls,et al.  Scene perception: inferior temporal cortex neurons encode the positions of different objects in the scene , 2005, The European journal of neuroscience.

[92]  E. Rolls,et al.  2005 Special issue: Spatial view cells in the hippocampus, and their idiothetic update based on place and head direction , 2005 .

[93]  Gustavo Deco,et al.  Neural dynamics of cross-modal and cross-temporal associations , 2005, Experimental Brain Research.

[94]  T. Hafting,et al.  Microstructure of a spatial map in the entorhinal cortex , 2005, Nature.

[95]  B. McNaughton,et al.  Independent Codes for Spatial and Episodic Memory in Hippocampal Neuronal Ensembles , 2005, Science.

[96]  E. Rolls,et al.  Object, space, and object-space representations in the primate hippocampus. , 2005, Journal of neurophysiology.

[97]  M. Buckley The Role of the Perirhinal Cortex and Hippocampus in Learning, Memory, and Perception , 2005, The Quarterly journal of experimental psychology. B, Comparative and physiological psychology.

[98]  E. Rolls,et al.  Reward-Spatial View Representations and Learning in the Primate Hippocampus , 2005, The Journal of Neuroscience.

[99]  Jeffrey S. Taube,et al.  Head direction cells and the neural mechanisms of spatial orientation , 2005 .

[100]  Neil Burgess,et al.  Attractor Dynamics in the Hippocampal Representation of the Local Environment , 2005, Science.

[101]  Gustavo Deco,et al.  Sequential Memory: A Putative Neural and Synaptic Dynamical Mechanism , 2005, Journal of Cognitive Neuroscience.

[102]  E. T. Rolls,et al.  Self-organizing continuous attractor network models of hippocampal spatial view cells , 2005, Neurobiology of Learning and Memory.

[103]  C. Florian,et al.  Hippocampal CA3-region is crucial for acquisition and memory consolidation in Morris water maze task in mice , 2004, Behavioural Brain Research.

[104]  M. Fyhn,et al.  Spatial Representation in the Entorhinal Cortex , 2004, Science.

[105]  D. Amaral,et al.  Perirhinal and parahippocampal cortices of the macaque monkey: Intrinsic projections and interconnections , 2004, The Journal of comparative neurology.

[106]  M. Wilson,et al.  NMDA receptors, place cells and hippocampal spatial memory , 2004, Nature Reviews Neuroscience.

[107]  Paul E. Gilbert,et al.  Localization of function within the dorsal hippocampus: the role of the CA3 subregion in paired-associate learning. , 2003, Behavioral neuroscience.

[108]  E. Rolls,et al.  Attention and working memory: a dynamical model of neuronal activity in the prefrontal cortex , 2003, The European journal of neuroscience.

[109]  Arne D. Ekstrom,et al.  Cellular networks underlying human spatial navigation , 2003, Nature.

[110]  R. Morris,et al.  Glutamate-receptor-mediated encoding and retrieval of paired-associate learning , 2003, Nature.

[111]  H. Mallot,et al.  Reward modulates neuronal activity in the hippocampus of the rat , 2003, Behavioural Brain Research.

[112]  Susumu Tonegawa,et al.  Genetic neuroscience of mammalian learning and memory. , 2003, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.

[113]  M. Quirk,et al.  Hippocampal CA3 NMDA Receptors Are Crucial for Memory Acquisition of One-Time Experience , 2003, Neuron.

[114]  Edmund T. Rolls,et al.  Invariant Object Recognition in the Visual System with Novel Views of 3D Objects , 2002, Neural Computation.

[115]  G. Buzsáki,et al.  Single granule cells reliably discharge targets in the hippocampal CA3 network in vivo , 2002, Nature Neuroscience.

[116]  Menno P. Witter,et al.  Place Cells and Place Recognition Maintained by Direct Entorhinal-Hippocampal Circuitry , 2002, Science.

[117]  E. Rolls,et al.  A unified model of spatial and episodic memory , 2002, Proceedings of the Royal Society of London. Series B: Biological Sciences.

[118]  M. Quirk,et al.  Requirement for Hippocampal CA3 NMDA Receptors in Associative Memory Recall , 2002, Science.

[119]  M. Witter,et al.  Projections from the parahippocampal region to the prefrontal cortex in the rat: evidence of multiple pathways , 2002, The European journal of neuroscience.

[120]  S. Corkin What's new with the amnesic patient H.M.? , 2002, Nature Reviews Neuroscience.

[121]  E. Rolls,et al.  Self-organizing continuous attractor networks and path integration: two-dimensional models of place cells , 2002, Network.

[122]  E. Rolls,et al.  Self-organizing continuous attractor networks and path integration: one-dimensional models of head direction cells , 2002, Network.

[123]  E. Rolls,et al.  Speed of feedforward and recurrent processing in multilayer networks of integrate-and-fire neurons , 2001, Network.

[124]  Neil Burgess,et al.  Predictions derived from modelling the hippocampal role in navigation , 2000, Biological Cybernetics.

[125]  J. Lassalle,et al.  Reversible Inactivation of the Hippocampal Mossy Fiber Synapses in Mice Impairs Spatial Learning, but neither Consolidation nor Memory Retrieval, in the Morris Navigation Task , 2000, Neurobiology of Learning and Memory.

[126]  E. Rolls,et al.  Spatial view cells in the primate hippocampus: allocentric view not head direction or eye position or place. , 1999, Cerebral cortex.

[127]  H. Eichenbaum,et al.  The global record of memory in hippocampal neuronal activity , 1999, Nature.

[128]  Alessandro Treves,et al.  Attractor neural networks storing multiple space representations: A model for hippocampal place fields , 1998, cond-mat/9807101.

[129]  G Buzsáki,et al.  GABAergic Cells Are the Major Postsynaptic Targets of Mossy Fibers in the Rat Hippocampus , 1998, The Journal of Neuroscience.

[130]  E T Rolls,et al.  Information about spatial view in an ensemble of primate hippocampal cells. , 1998, Journal of neurophysiology.

[131]  E. Rolls,et al.  Spatial view cells in the primate hippocampus: effects of removal of view details. , 1998, Journal of neurophysiology.

[132]  Alessandro Treves,et al.  Stable and Rapid Recurrent Processing in Realistic Autoassociative Memories , 1998, Neural Computation.

[133]  David Foster,et al.  Simulation studies of the CA3 hippocampal subfield modelled as an attractor neural network , 1997, Neural Networks.

[134]  U. Frey,et al.  Hippocampal synaptic plasticity: role in spatial learning or the automatic recording of attended experience? , 1997, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.

[135]  Edmund T. Rolls,et al.  Time for retrieval in recurrent associative memories , 1997 .

[136]  B L McNaughton,et al.  Path Integration and Cognitive Mapping in a Continuous Attractor Neural Network Model , 1997, The Journal of Neuroscience.

[137]  E. Rolls,et al.  Spatial View Cells in the Primate Hippocampus , 1997, The European journal of neuroscience.

[138]  J. Taube,et al.  Processing the head direction cell signal: A review and commentary , 1996, Brain Research Bulletin.

[139]  D. Amaral,et al.  Organization of connections between the amygdaloid complex and the perirhinal and parahippocampal cortices in macaque monkeys , 1996, The Journal of comparative neurology.

[140]  J. Price,et al.  Limbic connections of the orbital and medial prefrontal cortex in macaque monkeys , 1995, The Journal of comparative neurology.

[141]  Alessandro Treves,et al.  Quantitative estimate of the information relayed by the Schaffer collaterals , 1995, Journal of Computational Neuroscience.

[142]  I. Whishaw,et al.  Fundamentals of Human Neuropsychology , 1995 .

[143]  James L. McClelland,et al.  Why there are complementary learning systems in the hippocampus and neocortex: insights from the successes and failures of connectionist models of learning and memory. , 1995, Psychological review.

[144]  M. Hasselmo,et al.  Dynamics of learning and recall at excitatory recurrent synapses and cholinergic modulation in rat hippocampal region CA3 , 1995, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[145]  D. Amaral,et al.  Perirhinal and parahippocampal cortices of the macaque monkey: Cortical afferents , 1994, The Journal of comparative neurology.

[146]  Anders Krogh,et al.  Introduction to the theory of neural computation , 1994, The advanced book program.

[147]  E. Rolls,et al.  Computational analysis of the role of the hippocampus in memory , 1994, Hippocampus.

[148]  W. Suzuki,et al.  Topographic organization of the reciprocal connections between the monkey entorhinal cortex and the perirhinal and parahippocampal cortices , 1994, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[149]  M. Witter Organization of the entorhinal—hippocampal system: A review of current anatomical data , 1993, Hippocampus.

[150]  B. McNaughton,et al.  Spatial selectivity of unit activity in the hippocampal granular layer , 1993, Hippocampus.

[151]  Peter M. Todd,et al.  Learning and connectionist representations , 1993 .

[152]  E T Rolls,et al.  Computational constraints suggest the need for two distinct input systems to the hippocampal CA3 network , 1992, Hippocampus.

[153]  Treves,et al.  Graded-response neurons and information encodings in autoassociative memories. , 1990, Physical review. A, Atomic, molecular, and optical physics.

[154]  D. Amaral,et al.  Organization of intrahippocampal projections originating from CA3 pyramidal cells in the rat , 1990, The Journal of comparative neurology.

[155]  David E. Rumelhart,et al.  Brain style computation: learning and generalization , 1990 .

[156]  D. Amaral,et al.  The three-dimensional organization of the hippocampal formation: A review of anatomical data , 1989, Neuroscience.

[157]  E. Rolls The representation and storage of information in neural networks in the primate cerebral cortex and hippocampus , 1989 .

[158]  B. McNaughton,et al.  Hippocampal synaptic enhancement and information storage within a distributed memory system , 1987, Trends in Neurosciences.

[159]  Rossana De Beni,et al.  Effects of the mnemotechnique of loci in the memorization of concrete words , 1985 .

[160]  B. McNaughton,et al.  The contributions of position, direction, and velocity to single unit activity in the hippocampus of freely-moving rats , 1983, Experimental Brain Research.

[161]  G. V. Hoesen,et al.  The parahippocampal gyrus: New observations regarding its cortical connections in the monkey , 1982, Trends in Neurosciences.

[162]  J J Hopfield,et al.  Neural networks and physical systems with emergent collective computational abilities. , 1982, Proceedings of the National Academy of Sciences of the United States of America.

[163]  M. Eckardt The Hippocampus as a Cognitive Map , 1980 .

[164]  J. O’Keefe A review of the hippocampal place cells , 1979, Progress in Neurobiology.

[165]  PETER E. LOWTHER,et al.  In Memory , 1977, Evolution; international journal of organic evolution.

[166]  S. Amari Dynamics of pattern formation in lateral-inhibition type neural fields , 1977, Biological Cybernetics.

[167]  J. O'Keefe,et al.  The hippocampus as a spatial map. Preliminary evidence from unit activity in the freely-moving rat. , 1971, Brain research.

[168]  D Marr,et al.  Simple memory: a theory for archicortex. , 1971, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.

[169]  L. Pinneo On noise in the nervous system. , 1966, Psychological review.

[170]  W. Scoville,et al.  LOSS OF RECENT MEMORY AFTER BILATERAL HIPPOCAMPAL LESIONS , 1957, Journal of neurology, neurosurgery, and psychiatry.

[171]  Andrea Klug,et al.  The Hippocampus Book , 2016 .

[172]  Edmund T. Rolls,et al.  Cerebral Cortex Principles of Operation , 2015 .

[173]  E. Rolls Diluted connectivity in pattern association networks facilitates the recall of information from the hippocampus to the neocortex. , 2015, Progress in brain research.

[174]  Eleanor A. Maguire,et al.  Scenes , Spaces , and Memory Traces : What Does the Hippocampus Do ? , 2015 .

[175]  Edmund T. Rolls,et al.  Cortical Attractor Network Dynamics with Diluted Connectivity , 2011 .

[176]  M. Hasselmo,et al.  Modes and Models of Forebrain Cholinergic Neuromodulation of Cognition , 2011, Neuropsychopharmacology.

[177]  R. Morris,et al.  Hippocampal-neocortical interactions in memory formation, consolidation, and reconsolidation. , 2010, Annual review of psychology.

[178]  E. Rolls The Neurophysiology and Computational Mechanisms of Object Representation , 2009 .

[179]  E. Rolls Object Categorization: The Neurophysiology and Computational Mechanisms of Object Representation , 2009 .

[180]  E. Rolls,et al.  Information Representation , Processing , and Storage in the Brain : Analysis at the Single Neuron Level , 2007 .

[181]  Rossana De Beni,et al.  Stressing the efficacy of the Loci method: Oral presentation and the subject-generation of the Loci pathway with expository passages , 2005 .

[182]  R. Kesner,et al.  The role of the CA3 subregion of the dorsal hippocampus in spatial pattern completion in the rat , 2005, Hippocampus.

[183]  R. Kesner,et al.  Encoding versus retrieval of spatial memory: Double dissociation between the dentate gyrus and the perforant path inputs into CA3 in the dorsal hippocampus , 2004, Hippocampus.

[184]  Thomas P. Trappenberg,et al.  Self-organising continuous attractor networks with multiple activity packets, and the representation of space , 2004, Neural Networks.

[185]  S. Wiener,et al.  Reward value invariant place responses and reward site associated activity in hippocampal neurons of behaving rats , 2003, Hippocampus.

[186]  M. Witter,et al.  Morphological and numerical analysis of synaptic interactions between neurons in deep and superficial layers of the entorhinal cortex of the rat , 2003, Hippocampus.

[187]  D. Amaral,et al.  Projections from the lateral, basal, and accessory basal nuclei of the amygdala to the entorhinal cortex in the macaque monkey , 2002, Hippocampus.

[188]  Paul E. Gilbert,et al.  Dissociating hippocampal subregions: A double dissociation between dentate gyrus and CA1 , 2001, Hippocampus.

[189]  E. Rolls,et al.  A view model which accounts for the spatial fields of hippocampal primate spatial view cells and rat place cells , 2001, Hippocampus.

[190]  E. Rolls,et al.  Role of long‐term synaptic modification in short‐term memory , 2001, Hippocampus.

[191]  D. Amaral,et al.  Hippocampal‐neocortical interaction: A hierarchy of associativity , 2000, Hippocampus.

[192]  F. H. Lopes da Silva,et al.  Cortico‐hippocampal communication by way of parallel parahippocampal‐subicular pathways , 2000, Hippocampus.

[193]  James L. McClelland,et al.  Parallel Distributed Processing: Explorations in the Micro-structure of Cognition , 2000 .

[194]  E. Rolls Spatial view cells and the representation of place in the primate hippocampus , 1999, Hippocampus.

[195]  E T Rolls,et al.  Analysis of information transmission in the schaffer collaterals , 1999, Hippocampus.

[196]  E. Rolls,et al.  Head direction cells in the primate pre‐subiculum , 1999, Hippocampus.

[197]  E. Rolls,et al.  Neural networks and brain function , 1998 .

[198]  W E Skaggs,et al.  Deciphering the hippocampal polyglot: the hippocampus as a path integration system. , 1996, The Journal of experimental biology.

[199]  E. Rolls A theory of hippocampal function in memory , 1996, Hippocampus.

[200]  J. O’Keefe,et al.  Neuronal computations underlying the firing of place cells and their role in navigation , 1996, Hippocampus.

[201]  Alessandro Treves,et al.  Pattern retrieval in threshold-linear associative nets. , 1996, Network.

[202]  E. Rolls,et al.  View‐responsive neurons in the primate hippocampal complex , 1995, Hippocampus.

[203]  Edmund T. Rolls,et al.  What determines the capacity of autoassociative memories in the brain? Network , 1991 .

[204]  John O'Keefe,et al.  The hippocampal cognitive map and navigational strategies. , 1991 .

[205]  Edmund T. Rolls,et al.  The relative advantages of sparse versus distributed encoding for associative neuronal networks in the brain , 1990 .

[206]  E. Rolls,et al.  Theoretical and neurophysiological analysis of the functions of the primate hippocampus in memory. , 1990, Cold Spring Harbor symposia on quantitative biology.

[207]  D. Amaral,et al.  Neurons, numbers and the hippocampal network. , 1990, Progress in brain research.

[208]  E. W. Kairiss,et al.  Hebbian synapses: biophysical mechanisms and algorithms. , 1990, Annual review of neuroscience.

[209]  B. McNaughton,et al.  Hebb-Marr networks and the neurobiological representation of action in space. , 1990 .

[210]  E. Rolls Functions of neuronal networks in the hippocampus and neocortex in memory , 1989 .

[211]  W. Levy A computational approach to hippocampal function , 1989 .

[212]  Gordon H. Bower,et al.  Computational models of learning in simple neural systems , 1989 .

[213]  Teuvo Kohonen,et al.  Associative memory. A system-theoretical approach , 1977 .

[214]  E. Rolls Neuroscience and Biobehavioral Reviews a Non-reward Attractor Theory of Depression , 2022 .

[215]  E. Rolls,et al.  The Noisy Brain: Stochastic Dynamics as a Principle of Brain Function , 2022 .

[216]  N. Burgess,et al.  Citation for Published Item: Use Policy Boundary Vector Cells in the Subiculum of the Hippocampal Formation , 2022 .