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Modeling place field activity with hierarchical slow feature analysis

机译:使用分层慢特征分析为场所活动建模

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摘要

What are the computational laws of hippocampal activity? In this paper we argue for the slowness principle as a fundamental processing paradigm behind hippocampal place cell firing. We present six different studies from the experimental literature, performed with real-life rats, that we replicated in computer simulations. Each of the chosen studies allows rodents to develop stable place fields and then examines a distinct property of the established spatial encoding: adaptation to cue relocation and removal; directional dependent firing in the linear track and open field; and morphing and scaling the environment itself. Simulations are based on a hierarchical Slow Feature Analysis (SFA) network topped by a principal component analysis (ICA) output layer. The slowness principle is shown to account for the main findings of the presented experimental studies. The SFA network generates its responses using raw visual input only, which adds to its biological plausibility but requires experiments performed in light conditions. Future iterations of the model will thus have to incorporate additional information, such as path integration and grid cell activity, in order to be able to also replicate studies that take place during darkness.
机译:海马活动的计算规律是什么?在本文中,我们认为慢度原理是海马地方细胞放电背后的基本加工范式。我们从实验文献中提供了六种不同的研究,这些研究是针对真实生活中的大鼠进行的,我们在计算机模拟中进行了复制。每个选定的研究都允许啮齿动物发展稳定的场所,然后检查已建立的空间编码的独特属性:适应提示的重新定位和去除;线性田径场中与方向有关的射击以及变形和缩放环境本身。模拟基于分层的慢特征分析(SFA)网络,该网络顶部是主成分分析(ICA)输出层。慢速原理表明了所提出的实验研究的主要发现。 SFA网络仅使用原始视觉输入来生成其响应,这增加了其生物学可信度,但需要在光照条件下进行实验。因此,模型的未来迭代将必须包含其他信息,例如路径积分和网格单元活动,以便能够复制在黑暗中进行的研究。

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