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Noise reduction in intracranial pressure signal using causal shape manifolds

机译:使用因果形歧管降低颅内压力信号的噪声

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摘要

We present the Iterative/Causal Subspace Tracking framework (I/CST) for reducing noise in continuously monitored quasi-periodic biosignals. Signal reconstruction of the basic segments of the noisy signal (e.g. beats) is achieved by projection to a reduced space on which probabilistic tracking is performed. The attractiveness of the presented method lies in the fact that the subspace, or manifold, is learned by incorporating temporal, morphological, and signal elevation constraints, so that segment samples with similar shapes, and that are close in time and elevation, are also close in the subspace representation. Evaluation of the algorithm’s effectiveness on the intracranial pressure (ICP) signal serves as a practical illustration of how it can operate in clinical conditions on routinely acquired biosignals. The reconstruction accuracy of the system is evaluated on an idealized 20-min ICP recording established from the average ICP of patients monitored for various ICP related conditions. The reconstruction accuracy of the ground truth signal is tested in presence of varying levels of additive white Gaussian noise (AWGN) and Poisson noise processes, and measures significant increases of 758% and 396% in the average signal-to-noise ratio (SNR).
机译:我们提出了迭代/因果子空间跟踪框架(I / CST),以减少连续监测的准周期性生物信号中的噪声。通过投影到在其上执行概率跟踪的减小的空间来实现对噪声信号的基本段(例如,拍子)的信号重构。所提出的方法的吸引力在于,通过结合时间,形态和信号高程约束来学习子空间或流形,使得具有相似形状且在时间和高度上接近的分段样本也很接近。在子空间表示中。对算法在颅内压(ICP)信号上的有效性进行评估,可以作为该算法在临床条件下如何按常规获取的生物信号运行的实际例证。系统的重建精度在理想化的20分钟ICP记录上进行评估,该记录由针对各种ICP相关病症监测的患者的平均ICP建立。在存在不同水平的加性高斯白噪声(AWGN)和泊松噪声过程的情况下,对地面真实信号的重构精度进行了测试,并测量出平均信噪比(SNR)分别显着增加了758%和396% 。

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