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Dentate Gyrus Circuitry Features Improve Performance of Sparse Approximation Algorithms

机译:齿状回电路特性提高了稀疏近似算法的性能

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摘要

Memory-related activity in the Dentate Gyrus (DG) is characterized by sparsity. Memory representations are seen as activated neuronal populations of granule cells, the main encoding cells in DG, which are estimated to engage 2–4% of the total population. This sparsity is assumed to enhance the ability of DG to perform pattern separation, one of the most valuable contributions of DG during memory formation. In this work, we investigate how features of the DG such as its excitatory and inhibitory connectivity diagram can be used to develop theoretical algorithms performing Sparse Approximation, a widely used strategy in the Signal Processing field. Sparse approximation stands for the algorithmic identification of few components from a dictionary that approximate a certain signal. The ability of DG to achieve pattern separation by sparsifing its representations is exploited here to improve the performance of the state of the art sparse approximation algorithm “Iterative Soft Thresholding” (IST) by adding new algorithmic features inspired by the DG circuitry. Lateral inhibition of granule cells, either direct or indirect, via mossy cells, is shown to enhance the performance of the IST. Apart from revealing the potential of DG-inspired theoretical algorithms, this work presents new insights regarding the function of particular cell types in the pattern separation task of the DG.
机译:齿状回(DG)中与记忆有关的活动具有稀疏性。记忆表示被视为是颗粒细胞的活化神经元群体,这是DG中的主要编码细胞,估计占总群体的2-4%。假定这种稀疏性可以增强DG执行模式分离的能力,这是DG在内存形成过程中最有价值的贡献之一。在这项工作中,我们研究了如何利用DG的功能(如兴奋性和抑制性连接图)来开发执行稀疏近似的理论算法,稀疏近似是信号处理领域中广泛使用的策略。稀疏近似表示从字典中对某个信号进行近似的少量成分的算法识别。此处通过利用DG通过稀疏表示来实现模式分离的能力,通过添加受DG电路启发的新算法功能来提高最新的稀疏近似算法“迭代软阈值”(IST)的性能。通过苔藓细胞对颗粒细胞的横向抑制,无论是直接抑制还是间接抑制,都可以增强IST的性能。除了揭示DG启发性理论算法的潜力外,这项工作还提供了有关特定细胞类型在DG模式分离任务中的功能的新见解。

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