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An Automated Classification Method for Single Sweep Local Field Potentials Recorded from Rat Barrel Cortex under Mechanical Whisker Stimulation

机译:机械须晶刺激下大鼠桶状皮层单扫局部声势的自动分类方法

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摘要

Understanding brain signals as an outcome of the brain's information processing is a challenge for the neuroscience and neuroengineering community. Rodents sense and explore the environment through whisking. The local field potentials (LFPs) recorded from the barrel columns of the rat somatosensory cortex during whisking provide information about the tactile information processing pathway. Particularly when large-scale high-resolution neuronal probes are used, during each experiment many single LFPs are recorded as an outcome of the underlying neuronal network activation and averaged to extract information. However, single LFP signals are frequently very different from each other. Extracting information provided by their shape can be used to better decode information transmitted by the network. This work proposes an automated method capable of classifying these signals based on their shapes. A template matching approach is used to recognize single LFPs and the contour information is extracted from the recognized signals to generate a feature matrix, which is then classified using intelligent K-means clustering. As an application example, the shape-specific information (e.g., latency and amplitude) of LFPs evoked in the rat barrel cortex are used in decoding the rat whisker information processing pathway using the proposed method.
机译:了解大脑信号是大脑信息处理的结果,这对神经科学和神经工程界是一个挑战。啮齿动物通过打扫来感知和探索环境。搅拌期间从大鼠体感皮层的桶形柱记录的局部场电势(LFP)提供了有关触觉信息处理路径的信息。尤其是在使用大规模高分辨率神经元探针时,在每个实验期间,许多单个LFP被记录为潜在神经元网络激活的结果,并取平均值以提取信息。但是,单个LFP信号通常彼此非常不同。通过它们的形状提供的信息提取可用于更好地解码网络传输的信息。这项工作提出了一种自动方法,能够根据信号的形状对其进行分类。使用模板匹配方法来识别单个LFP,并从识别的信号中提取轮廓信息以生成特征矩阵,然后使用智能K均值聚类对其进行分类。作为应用示例,在鼠桶皮层中诱发的LFP的形状特定信息(例如,潜伏期和振幅)用于使用所提出的方法对大鼠晶须信息处理路径进行解码。

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