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首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >A robust method for detection of linear and nonlinear interactions: application to renal blood flow dynamics.
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A robust method for detection of linear and nonlinear interactions: application to renal blood flow dynamics.

机译:一种用于检测线性和非线性相互作用的可靠方法:在肾血流动力学中的应用。

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摘要

We have developed a method that can identify switching dynamics in time series, termed the improved annealed competition of experts (IACE) algorithm. In this paper, we extend the approach and use it for detection of linear and nonlinear interactions, by employing histograms showing the frequency of switching modes obtained from the IACE, then examining time-frequency spectra. This extended approach is termed Histogram of improved annealed competition of experts-time frequency (HIACE-TF). The hypothesis is that frequent switching dynamics in HIACE-TF results are due to interactions between different dynamic components. To validate this assertion, we used both simulation examples as well as application to renal blood flow data. We compared simulation results to a time-phase bispectrum (TPB) approach, which can also be used to detect time-varying quadratic phase coupling between various components. We found that the HIACE-TF approach is more accurate than the TPB in detecting interactions, and remains accurate for signal-to-noise ratios as low as 15 dB. With all 10 data sets, comprised of volumetric renal blood flow data, we also validated the feasibility of the HIACE-TF approach in detecting nonlinear interactions between the two mechanisms responsible for renal autoregulation. Further validation of the HIACE-TF approach was achieved by comparing it to a realistic mathematical model that has the capability to generate either the presence or the absence of nonlinear interactions between two renal autoregulatory mechanisms.
机译:我们开发了一种可以按时间序列识别切换动态的方法,称为改进的专家退火竞争(IACE)算法。在本文中,我们通过使用直方图显示从IACE获得的切换模式的频率,然后检查时间频谱,从而扩展了该方法并将其用于检测线性和非线性相互作用。这种扩展的方法称为专家时间频率改善的退火竞争直方图(HIACE-TF)。假设是HIACE-TF结果中频繁的切换动力学是由于不同动态分量之间的相互作用引起的。为了验证这一说法,我们同时使用了仿真示例以及对肾脏血流数据的应用。我们将仿真结果与时相双谱(TPB)方法进行了比较,该方法还可用于检测各个组件之间的时变二次相耦合。我们发现,HIACE-TF方法在检测相互作用方面比TPB更准确,并且对于低至15 dB的信噪比仍保持准确。利用全部10个数据集(包括肾脏体积血流数据),我们还验证了HIACE-TF方法在检测负责肾脏自动调节的两种机制之间的非线性相互作用中的可行性。通过将HIACE-TF方法与一个现实的数学模型进行比较,进一步验证了该模型,该模型具有生成或不存在两个肾脏自动调节机制之间非线性相互作用的能力。

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