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Windowed Multitaper Correlation Analysis of Multimodal Brain Monitoring Parameters

机译:多峰脑监测参数的窗口多锥相关分析

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摘要

Although multimodal monitoring sets the standard in daily practice of neurocritical care, problem-oriented analysis tools to interpret the huge amount of data are lacking. Recently a mathematical model was presented that simulates the cerebral perfusion and oxygen supply in case of a severe head trauma, predicting the appearance of distinct correlations between arterial blood pressure and intracranial pressure. In this study we present a set of mathematical tools that reliably detect the predicted correlations in data recorded at a neurocritical care unit. The time resolved correlations will be identified by a windowing technique combined with Fourier-based coherence calculations. The phasing of the data is detected by means of Hilbert phase difference within the above mentioned windows. A statistical testing method is introduced that allows tuning the parameters of the windowing method in such a way that a predefined accuracy is reached. With this method the data of fifteen patients were examined in which we found the predicted correlation in each patient. Additionally it could be shown that the occurrence of a distinct correlation parameter, called scp, represents a predictive value of high quality for the patients outcome.
机译:尽管多模式监测为神经重症监护的日常操作树立了标准,但仍缺乏以问题为导向的分析工具来解释大量数据。最近,提出了一种数学模型,该模型可以模拟严重颅脑外伤时的脑灌注和供氧情况,从而预测动脉血压和颅内压之间存在明显的相关性。在这项研究中,我们提出了一套数学工具,可以可靠地检测神经重症监护病房记录的数据中的预测相关性。时间分辨的相关性将通过开窗技术与基于傅立叶的相干性计算相结合来识别。通过上述窗口内的希尔伯特相位差来检测数据的相位。引入了一种统计测试方法,该方法允许以达到预定义精度的方式调整加窗方法的参数。使用此方法检查了15位患者的数据,我们发现了每位患者的预测相关性。另外,可以证明,称为scp的独特相关参数的出现代表了高质量的患者预后价值。

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