NCITLGNEDec 13, 2017

On the organization of grid and place cells: Neural de-noising via subspace learning

arXiv:1712.04602v21 citations
Originality Synthesis-oriented
AI Analysis

This work addresses the neural coding of space in mammals, but it appears incremental as it builds on existing models of grid and place cells without introducing a major new approach.

The paper tackled the problem of understanding and improving the neural code for spatial location by analyzing the joint activity of grid and place cells, and it found that de-noising mechanisms can significantly enhance the fidelity of this representation, though no specific numerical improvements were provided.

Place cells in the hippocampus are active when an animal visits a certain location (referred to as a place field) within an environment. Grid cells in the medial entorhinal cortex (MEC) respond at multiple locations, with firing fields that form a periodic and hexagonal tiling of the environment. The joint activity of grid and place cell populations, as a function of location, forms a neural code for space. An ensemble of codes is generated by varying grid and place cell population parameters. For each code in this ensemble, codewords are generated by stimulating a network with a discrete set of locations. In this manuscript, we develop an understanding of the relationships between coding theoretic properties of these combined populations and code construction parameters. These relationships are revisited by measuring the performances of biologically realizable algorithms implemented by networks of place and grid cell populations, as well as constraint neurons, which perform de-noising operations. Objectives of this work include the investigation of coding theoretic limitations of the mammalian neural code for location and how communication between grid and place cell networks may improve the accuracy of each population's representation. Simulations demonstrate that de-noising mechanisms analyzed here can significantly improve fidelity of this neural representation of space. Further, patterns observed in connectivity of each population of simulated cells suggest that inter-hippocampal-medial-entorhinal-cortical connectivity decreases downward along the dorsoventral axis.

Foundations

The foundational work for this paper's niche, ranked by how specifically the neighbourhood builds on it — not by global fame.

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