Finding the Way with a Noisy Brain
暂无分享,去创建一个
[1] C. Darwin. Origin of Certain Instincts , 1873, Nature.
[2] E. Tolman. Cognitive maps in rats and men. , 1948, Psychological review.
[3] L. Pinneo. On noise in the nervous system. , 1966, Psychological review.
[4] J. Rovner. Acoustic communication in a lycosid spider (Lycosa rabida Walckenaer). , 1967, Animal behaviour.
[5] K. Frisch. The dance language and orientation of bees , 1967 .
[6] J. O'Keefe,et al. The hippocampus as a spatial map. Preliminary evidence from unit activity in the freely-moving rat. , 1971, Brain research.
[7] R. Muller,et al. Head-direction cells recorded from the postsubiculum in freely moving rats. II. Effects of environmental manipulations , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[8] Simon Benhamou,et al. Spatial memory in large scale movements: Efficiency and limitation of the egocentric coding process , 1990 .
[9] R U Muller,et al. Head-direction cells recorded from the postsubiculum in freely moving rats. I. Description and quantitative analysis , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[10] 永福 智志. The Organization of Learning , 2005, Journal of Cognitive Neuroscience.
[11] R. Barlow,et al. On the molecular origin of photoreceptor noise , 1993, Nature.
[12] R. Morse. The Dance Language and Orientation of Bees , 1994 .
[13] Roland Maurer,et al. What is modelling for? a critical review of the models of path integration , 1995 .
[14] B L McNaughton,et al. Path Integration and Cognitive Mapping in a Continuous Attractor Neural Network Model , 1997, The Journal of Neuroscience.
[15] N. Strausfeld,et al. Mushroom bodies of the cockroach: Their participation in place memory , 1998, The Journal of comparative neurology.
[16] E. Save,et al. Contribution of multiple sensory information to place field stability in hippocampal place cells , 2000, Hippocampus.
[17] E. Spelke,et al. Updating egocentric representations in human navigation , 2000, Cognition.
[18] Matthew Collett,et al. Path integration in insects , 2000, Current Opinion in Neurobiology.
[19] J. Taube,et al. On the behavioral significance of head direction cells: neural and behavioral dynamics during spatial memory tasks. , 2001, Behavioral neuroscience.
[20] Yin Yang,et al. Neural processes of self-organization of control system for foraging trips of honeybees , 2001, Neurocomputing.
[21] Sebastian Thrun,et al. Probabilistic robotics , 2002, CACM.
[22] R. Stackman,et al. Rats with lesions of the vestibular system require a visual landmark for spatial navigation , 2002, Behavioural Brain Research.
[23] F. Dyer. The biology of the dance language. , 2002, Annual review of entomology.
[24] J. Bassett,et al. Persistent neural activity in head direction cells. , 2003, Cerebral cortex.
[25] Kathryn J. Jeffery,et al. The neurobiology of spatial behaviour , 2003 .
[26] K. Jeffery,et al. Preserved performance in a hippocampal‐dependent spatial task despite complete place cell remapping , 2003, Hippocampus.
[27] M. Fyhn,et al. Spatial Representation in the Entorhinal Cortex , 2004, Science.
[28] U. Homberg. In search of the sky compass in the insect brain , 2004, Naturwissenschaften.
[29] R. Vickerstaff,et al. Published by The Company of Biologists 2005 doi:10.1242/jeb.01772 Evolving neural models of path integration , 2022 .
[30] R. Menzel,et al. The flight paths of honeybees recruited by the waggle dance , 2005, Nature.
[31] E.N. Brown,et al. An analysis of hippocampal spatio-temporal representations using a Bayesian algorithm for neural spike train decoding , 2005, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[32] T. Hafting,et al. Microstructure of a spatial map in the entorhinal cortex , 2005, Nature.
[33] R. Wehner,et al. Uncertainty about nest position influences systematic search strategies in desert ants , 2006, Journal of Experimental Biology.
[34] B. Schönebeck,et al. The neural basis of ego- and allocentric reference frames in spatial navigation: Evidence from spatio-temporal coupled current density reconstruction , 2006, Brain Research.
[35] Bruce L. McNaughton,et al. Path integration and the neural basis of the 'cognitive map' , 2006, Nature Reviews Neuroscience.
[36] Mark C. Fuhs,et al. A Spin Glass Model of Path Integration in Rat Medial Entorhinal Cortex , 2006, The Journal of Neuroscience.
[37] J. O’Keefe,et al. An oscillatory interference model of grid cell firing , 2007, Hippocampus.
[38] Allen Cheung,et al. Animal navigation: the difficulty of moving in a straight line , 2007, Biological Cybernetics.
[39] K. Jeffery. Self-localization and the entorhinal–hippocampal system , 2007, Current Opinion in Neurobiology.
[40] Jan Wessnitzer,et al. Evolving a Neural Model of Insect Path Integration , 2007, Adapt. Behav..
[41] Konrad Paul Kording,et al. Decision Theory: What "Should" the Nervous System Do? , 2007, Science.
[42] Allen Cheung,et al. Animal navigation: general properties of directed walks , 2008, Biological Cybernetics.
[43] N. Burgess. Grid cells and theta as oscillatory interference: Theory and predictions , 2008, Hippocampus.
[44] R. Wehner,et al. How flexible is the systematic search behaviour of desert ants? , 2009, Animal Behaviour.
[45] M. Ernst,et al. Walking Straight into Circles , 2009, Current Biology.
[46] Natalie M. Myres,et al. Distinctive Paleo-Indian Migration Routes from Beringia Marked by Two Rare mtDNA Haplogroups , 2009, Current Biology.
[47] R. Wehner,et al. Desert ants use foraging distance to adapt the nest search to the uncertainty of the path integrator , 2010 .
[48] A. Cheung,et al. Which coordinate system for modelling path integration? , 2010, Journal of theoretical biology.