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The time-varying coherent analysis of medical signals

机译:医学信号的时变相干分析

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The study of neuron-synchronization of EEG signals can help us to understand the underlying cognitive processes. The cognitive and information processing take place in different brain regions. In order to investigate how these distributed brain regions are linked together and the information is exchanged, the coherent analysis is frequently used as a tool for studying the relationship between two channel EEG. EEG signals are often expressed as time-varying processes. For this purpose, this paper proposes a modern time-frequency method, which employs an alternative way for quantifying synchrony with both temporal and spectral resolution. This modern analysis method combines the wavelet transform. with the coherence. The wavelet coherent spectrum is defined and computed from the EEG data set such that the cross wavelet magnitude spectra serves to indicate the degree of coherence and the cross wavelet phase can be used to provide the direction of information flow between channels on different cortical regions. Several real EEG data are collected based on a cognitive target. It is observed from the cross wavelet magnitude spectra and the phase that there are obviously differences during identifying both Chinese and English sentences. The researches are helpful for the study of English and Chinese to the Chinese students.
机译:脑电信号神经元同步的研究可以帮助我们理解潜在的认知过程。认知和信息处理发生在不同的大脑区域。为了研究这些分布的大脑区域如何链接在一起以及如何交换信息,相干分析经常用作研究两个通道脑电图之间关系的工具。脑电信号通常表示为时变过程。为此,本文提出了一种现代的时频方法,该方法采用了另一种方法来量化时间分辨率和频谱分辨率的同步。这种现代的分析方法结合了小波变换。与连贯性。从EEG数据集中定义和计算小波相干频谱,以使交叉小波幅度谱用于指示相干程度,并且交叉小波相位可用于提供不同皮质区域上通道之间的信息流方向。基于认知目标收集了几个真实的EEG数据。从交叉小波幅度谱和相位可以看出,在识别汉英句子时存在明显的差异。这些研究有助于中国学生学习英语和汉语。

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