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Wavelet Decomposition-Based Analysis of Mismatch Negativity Elicited by a Multi-Feature Paradigm

机译:多特征范式引起的基于小波分解的失配负性分析

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In this study, event-related potentials (ERPs) collected from normally hearing subjects and elicited by a multi-feature paradigm were investigated, and mismatch negativity (MMN) was detected. Standard stimuli and five types of deviant stimuli were presented in a specified sequence, while EEG data were recorded digitally at a 1024 sec(-1) sampling rate. Two wavelet analyses were compared with a traditional difference-wave (DW) method. The Reverse biorthogonal wavelet ot the order of 6.8 and the quadratic B-Spline wavelet were applied for seven-level decomposition. The sixth-level approximation coefficients were appropriate for extracting the MMN from the averaged trace. The results obtained showed that wavelet decomposition (WLD) methods extract MMN as well as a band-pass digital filter (DF). The differences of the MMN peak latency between deviant types elicited by B-Spline WLD were more significant than those extracted by the DW, DF, or Reverse biorthogonal WLD. Also, wavelet coefficients of the delta-theta range indicated good discrimination between some combinations of the deviant types.
机译:在这项研究中,调查了从正常听力受试者收集并由多特征范式引发的事件相关电位(ERP),并检测了失配负性(MMN)。标准刺激和五种异常刺激以指定的顺序显示,而EEG数据以1024秒(-1)的采样率数字记录。将两种小波分析与传统的差分波(DW)方法进行了比较。将6.8级的反向双正交小波和二次B样条小波应用于七级分解。第六级近似系数适合于从平均迹线中提取MMN。获得的结果表明,小波分解(WLD)方法可提取MMN以及带通数字滤波器(DF)。 B样条WLD引起的异常类型之间MMN峰值潜伏期的差异比DW,DF或反向双正交WLD所提取的差异更大。而且,δ-θ范围的小波系数表明在偏差类型的一些组合之间有良好的区别。

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