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应用于改善子宫收缩同步性分析的非高斯替代数据情况下的非线性测试。

Nonlinearity testing in the case of non Gaussian surrogates, applied to improving analysis of synchronicity in uterine contraction.

作者信息

Terrien J, Hassan M, Germain G, Marque C, Karlsson B

机构信息

School of Science and Engineering, Reykjavik University, Reykjavik, 103 Iceland.

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2009;2009:3477-80. doi: 10.1109/IEMBS.2009.5334563.

Abstract

Surrogates are commonly used to test a particular hypothesis on time series. The parameter commonly used in the literature to test these hypotheses is the z score. The z score assumes that the distribution of the statistics obtained on the surrogates is Gaussian. In this paper, we propose the use of a more general parameter than the z score that will also work in the case of non-Gaussian distribution of the statistics. We also derive a statistical test, based on the fitting of the distribution of the surrogate measure profile, in order to test the initial hypothesis. We validate the proposed approach on both synthetic signals and real uterine EMG signals by using the nonlinear correlation coefficient as initial statistic. We further show that this corrected nonlinear correlation coefficient can discriminate between pregnancy contractions and labor in a monkey, but the uncorrected nonlinear correlation coefficient cannot. This makes the corrected nonlinear correlation coefficient a promising candidate in a future application for preterm labor prediction in humans.

摘要

替代数据通常用于对时间序列进行特定假设的检验。文献中常用于检验这些假设的参数是z分数。z分数假定从替代数据中获得的统计量分布是高斯分布。在本文中,我们提出使用一个比z分数更通用的参数,该参数在统计量非高斯分布的情况下也适用。我们还基于替代测量轮廓的分布拟合推导了一种统计检验方法,以检验初始假设。我们通过使用非线性相关系数作为初始统计量,在合成信号和真实子宫肌电信号上验证了所提出的方法。我们进一步表明,这种校正后的非线性相关系数可以区分猴子的妊娠收缩和分娩,但未校正的非线性相关系数则不能。这使得校正后的非线性相关系数在未来人类早产预测应用中成为一个有前景的候选指标。

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