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Rats hippocampal field potentials feature extraction of wake and sleep stages in Euclidean space

机译:大鼠海马场电位具有欧氏空间中唤醒和睡眠阶段的提取特征

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This paper presents a new methodology of feature extraction of sleep and wake stages of a freely behaving rat based on Continuous Wavelet Transform (CWT). The automatic separation of those stages is very useful for experiments related to learning and memory consolidation since recent scientific evidence indicates that sleep is strongly involved with offline reprocessing of acquired information during waking. Our approach transforms hippocampal Local Field Potentials (LFP) in data vectors that describe the energy distribution pattern of the signal on scaled Morlet wavelets projections. Results indicate that the mathematical analysis used in this work can sensibly describe brain signal patterns that correlate to states of behaviour and that our method can be used for a wider range of applications in neuroscience research.
机译:本文提出了一种基于连续小波变换(CWT)的自由行为大鼠睡眠和唤醒阶段特征提取的新方法。这些阶段的自动分离对于与学习和记忆巩固有关的实验非常有用,因为最近的科学证据表明,睡眠与唤醒过程中获取信息的离线重新处理密切相关。我们的方法将数据向量中的海马局部场电势(LFP)转换为按比例的Morlet小波投影描述信号的能量分布模式。结果表明,这项工作中使用的数学分析可以合理地描述与行为状态相关的大脑信号模式,并且我们的方法可以用于神经科学研究中的更广泛的应用。

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