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Neuronal Topology as Set of Braids: Information Processing, Transformation and Dynamics

机译:神经元拓扑作为辫子集:信息处理,转换和动力学。

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AbstractSpatial characteristics of brain matter affect dynamics of informational flow. It seems important to investigate into the topology of neural information to better understand biological neural nets as well as for their computer science analogs. Mathematical braids are proposed as tool for modeling the neuronal topology. Neurological basis of neuronal path is reviewed. We demonstrate mathematical algorithms for path description and transformation. A simulation environment for neural braid construction and transformation is implemented. Experimental evaluation of 1310719 braid-defined neural topologies illustrates how neural path intersections affect information processing and memory recall. The mathematical representation of synaptic pruning is proposed. Pruning of neural nets shows the applicability of the approach to the simplification of neural graphs for computational resource saving.
机译: Abstract 脑物质的空间特征影响信息流的动态。为了更好地理解生物神经网络及其计算机类似物,研究神经信息的拓扑似乎很重要。提出了数学编织物作为建模神经元拓扑的工具。回顾了神经元路径的神经学基础。我们演示了用于路径描述和转换的数学算法。实现了用于神经编织物构建和转化的仿真环境。对1310719辫子定义的神经拓扑进行的实验评估说明了神经路径相交如何影响信息处理和记忆回忆。提出了突触修剪的数学表示。神经网络的修剪表明该方法可简化神经图以节省计算资源。

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