Grid Cells Lose Coherence in Realistic Environments

Yi-Xiao Luo, M. Toso, Bailu Si, Federico Stella, A. Treves
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Abstract

Spatial cognition in naturalistic environments, for freely moving animals, may pose quite different constraints from that studied in artificial laboratory settings. Hippocampal place cells indeed look quite different, but almost nothing is known about entorhinal cortex grid cells, in the wild. Simulating our self-organizing adaptation model of grid cell pattern formation, we consider a virtual rat randomly exploring a virtual burrow, with feedforward connectivity from place to grid units and recurrent connectivity between grid units. The virtual burrow was based on those observed by John B. Calhoun, including several chambers and tunnels. Our results indicate that lateral connectivity between grid units may enhance their “gridness” within a limited strength range, but the overall effect of the irregular geometry is to disable long-range and obstruct short-range order. What appears as a smooth continuous attractor in a flat box, kept rigid by recurrent connections, turns into an incoherent motley of unit clusters, flexible or outright unstable.
网格细胞在现实环境中失去一致性
自然环境中的空间认知,对于自由移动的动物来说,可能会造成与人工实验室环境中研究的完全不同的限制。海马体的位置细胞确实看起来很不同,但在野外,人们对内嗅皮层网格细胞几乎一无所知。模拟我们的网格细胞模式形成的自组织适应模型,我们考虑一只虚拟大鼠随机探索一个虚拟洞穴,从地方到网格单元具有前馈连接,网格单元之间具有循环连接。这个虚拟洞穴是根据约翰·b·卡尔霍恩观察到的洞穴设计的,包括几个房间和隧道。研究结果表明,网格单元之间的横向连通性可以在有限的强度范围内增强网格单元的“网格性”,但不规则几何结构的总体效果是破坏远程秩序,阻碍近距离秩序。在一个扁平的盒子里,一个光滑连续的吸引子,通过循环的连接保持刚性,变成了一个不连贯的杂乱的单元簇,灵活的或完全不稳定的。
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