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Identical fits of nonnegative matrix/tensor factorization may correspond to different extracted event-related potentials

机译:非负矩阵/张量分解的完全拟合可能对应于不同的提取事件相关电位

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Nonnegative Matrix / Tensor factorization (NMF/NTF) have been used in the study of EEG, and the fit (explained variation) is often used to evaluate the performance of a nonnegative decomposition algorithm. However, this parameter only reveals the information derived from the mathematical model and just exhibits the reliability of the algorithms, and the property of EEG can not be reflected. If fits of two algorithms are identical, it is necessary to examine whether the desired components extracted by them are identical too. In order to verify this doubt, we performed NMF and NTF on the same dataset of an auditory event-related potentials (ERPs), and found that the identical fits of NMF and NTF under the hierarchical alternating least squares algorithms corresponded to different desired ERPs extracted by NMF and NTF, moreover, NTF contributed the ERP with much better timing and spectral properties. Such analysis implies that to combine the fit and property of the desired ERP component together helps evaluate the performance of NMF and NTF algorithms in the study of ERPs.
机译:非负矩阵/张量分解(NMF / NTF)已用于脑电图研究,并且拟合(解释性变异)经常用于评估非负分解算法的性能。然而,该参数仅揭示了从数学模型中得出的信息,仅显示了算法的可靠性,无法反映出脑电图的性质。如果两种算法的拟合度相同,则有必要检查它们提取的所需成分是否也相同。为了验证该怀疑,我们在与听觉事件相关电位(ERP)的相同数据集上执行了NMF和NTF,并发现在分层交替最小二乘算法下,NMF和NTF的相同拟合分别对应于提取的不同所需ERP此外,由NMF和NTF共同出资,NTF为ERP提供了更好的定时和频谱特性。此类分析表明,将所需ERP组件的适合性和特性结合在一起,有助于评估ERP研究中NMF和NTF算法的性能。

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