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The hippocampal formation is thought to learn spatial maps of environments, and in many models this learning process consists of forming a sensory association for each location in the environment.
The hippocampus as a spatial map: Preliminary evidence from unit activity in the freely-moving rat
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Minsky, M. (1974) · 1974
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The hippocampal memory indexing theory
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Head-direction cells recorded from the postsubiculum in freely moving rats. I. Description and quantitative analysis
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The spatial semantic hierarchy
Kuipers, B. (2000) · 2000
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Microstructure of a spatial map in the entorhinal cortex
Hafting, T., Fyhn, M., Molden, S., Moser, M.-B., and Moser, E. I. (2005) · 2005
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What Grid Cells Convey about Rat Location
Fiete, I. R., Burak, Y., and Brookings, T. (2008) · 2008
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Mapping a suburb with a single camera using a biologically inspired slam system
Milford, M. J. and Wyeth, G. F. (2008) · 2008
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Computational Models of Grid Cells
Giocomo, L., Moser, M.-B., and Moser, E. (2011) · 2011
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A map of visual space in the primate entorhinal cortex
Killian, N. J., Jutras, M. J., and Buffalo, E. A. (2012) · 2012
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The entorhinal grid map is discretized
Stensola, H., Stensola, T., Solstad, T., Frøland, K., Moser, M.-B., and Moser, E. I. (2012) · 2012
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Using Grid Cells for Navigation
Bush, D., Barry, C., Manson, D., and Burgess, N. (2015) · 2015
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Replay comes of age
Foster, D. J. (2017) · 2017
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A neural-level model of spatial memory and imagery
Bicanski, A. and Burgess, N. (2018) · 2018
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A Framework for Intelligence and Cortical Function Based on Grid Cells in the Neocortex
Hawkins, J., Lewis, M., Klukas, M., Purdy, S., and Ahmad, S. (2019) · 2019
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Object-vector coding in the medial entorhinal cortex
Høydal, Ø. A., Skytøen, E. R., Andersson, S. O., Moser, M.-B., and Moser, E. I. (2019) · 2019
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Locations in the Neocortex: A Theory of Sensorimotor Object Recognition Using Cortical Grid Cells
Lewis, M., Purdy, S., Ahmad, S., and Hawkins, J. (2019) · 2019
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Neuronal vector coding in spatial cognition
Bicanski, A. and Burgess, N. (2020) · 2020
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Memory engrams: Recalling the past and imagining the future
Josselyn, S. A. and Tonegawa, S. (2020) · 2020
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The Tolman-Eichenbaum Machine: Unifying Space and Relational Memory through Generalization in the Hippocampal Formation
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Nau, M., Navarro Schröder, T., Bellmund, J. L. S., and Doeller, C. F. (2018) · 2018
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Entorhinal cortex receptive fields are modulated by spatial attention, even without movement
Wilming, N., König, P., König, S., and Buffalo, E. A. (2018) · 2018
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Human entorhinal cortex represents visual space using a boundary-anchored grid
Julian, J. B., Keinath, A. T., Frazzetta, G., and Epstein, R. A. (2018a)
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The Neurocognitive Basis of Spatial Reorientation
Julian, J. B., Keinath, A. T., Marchette, S. A., and Epstein, R. A. (2018b)
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Whittington, J. C., Muller, T. H., Mark, S., Chen, G., Barry, C., Burgess, N., and Behrens, T. E. (2020) · 2020
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Scene graphs: A survey of generations and applications
Chang, X., Ren, P., Xu, P., Li, Z., Chen, X., and Hauptmann, A. (2021) · 2021
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