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Estimation of the foetal heart rate baseline based on singular spectrum analysis and empirical mode decomposition

机译:基于奇异谱分析的胎儿心率基线估计和经验模式分解

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In this paper, we propose a novel automatic baseline estimation algorithm for foetal heart rate (FHR), and we verify the correctness and effectiveness of the algorithm through clinical trials. First, Singular Spectrum Analysis (SSA) is used to improve the denoising algorithm during the pre-processing of FHR. Compared with the traditional denoising method that simply uses the sliding average method, the use of the SSA method to denoise, in terms of the overall aspect, not only maintains the signal trend that is consistent with the traditional method, but it also produces no additional signal decay and distortion, which verifies the correctness of the algorithm. The SSA method could ensure that the processed signal remains smooth, unlike the sliding average method that is susceptible to the influence of oscillatory noise, causing the signal to have still abruptly changed the noise after being filtered. Subsequently, we propose the Empirical Mode Decomposition (EMD) iterative pruning method for the extraction of the FHR baseline. This algorithm combines the characteristics of the two classical algorithms and includes the EMD to make the algorithm more adaptive. This algorithm overcomes the difficulties in the classical algorithms, and the extracted baseline can more accurately reflect the real baseline and improve the effect of acceleration and deceleration detection.
机译:在本文中,我们提出了一种新的胎儿心率(FHR)的新型基线估计算法,我们通过临床试验验证算法的正确性和有效性。首先,奇异频谱分析(SSA)用于改善FHR预处理期间的去噪算法。与简单地使用滑动平均方法的传统去噪方法相比,在整体方面,使用SSA方法的使用,不仅维持与传统方法一致的信号趋势,而且还产生额外的信号衰减和失真,验证算法的正确性。与易受振荡噪声影响的滑动平均方法不同,SSA方法可以确保处理的信号保持光滑,导致信号在过滤后仍然突然改变噪声。随后,我们提出了用于提取FHR基线的经验模式分解(EMD)迭代修剪方法。该算法结合了两个经典算法的特性,并包括EMD,使算法更加自适应。该算法克服了经典算法中的困难,提取的基线可以更准确地反映真实的基线并提高加速度和减速检测的效果。

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