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Synchrosqueezing transform: Application in the analysis of the K-complex pattern

机译:SynchroSqueezing变换:应用于K复合模式的分析

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K-complex is a pattern which appears in the sleep EEG and characterizes the second stage of the NREM sleep. According to the underlying role of studying this pattern, we propose using synchrosqueezing transform (SST) for The purpose of analysis and automatic detection of K-complex. SST is an EMD-like time-frequency algorithm for signal analysis. Our idea is based on the robust properties of the SST and its previous satisfactory results on biomedical signals, especially those with specific patterns. We successfully applied SST on 10 segments of 30 minutes sleep EEG signals which contain K-complexes labeled by two experts. Results illustrate that SST representation is able to detect this pattern at the right time and frequency locations in the time frequency plane, which are in consistency with the standard definition. Comparison with the continuous wavelet demonstrates the superiority of SST especially in finding K-complexes at the right places, reducing the blurredness and mistakenly detecting other part of the signal as K-complex.
机译:K-综合体是一种在睡眠脑电图中出现的图案,并表征了NREM睡眠的第二阶段。根据研究这种模式的潜在作用,我们建议使用同步转换(SST)以分析和自动检测K-复合物。 SST是一种用于信号分析的EMD时频率算法。我们的想法基于SST的强劲特性及其先前的生物医学信号令人满意的结果,尤其是具有特定模式的结果。我们成功地应用了30分钟睡眠EEG信号的10个段,其中包含由两个专家标记的K-Complex。结果说明SST表示能够在时间频率平面中的正确时间和频率位置处检测该模式,这与标准定义一致。与连续小波的比较表明SST的优越性,特别是在右侧的发现k复合物中,减少模糊性并错误地检测信号的其他部分作为K-复合物。

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