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A novel quadrature clutter rejection approach based on the multivariate empirical mode decomposition for bidirectional Doppler ultrasound signals

机译:基于多元经验模态分解的双向多普勒超声信号正交杂波抑制新方法

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摘要

A novel quadrature clutter rejection approach based on multivariate empirical mode decomposition (MEMD), which is an extension of empirical mode decomposition (EMD) to multivariate for processing multichannel signals, is proposed in this paper to suppress the quadrature clutter signals induced by the vascular wall and the surrounding stationary or slowly moving tissues in composite Doppler ultrasound signals, and extract more blood flow components with low velocities. In this approach, the MEMD algorithms, which include the bivariate empirical mode decomposition with a nonuniform sampling scheme for adaptive selection of projection directions (NS_BEMD) and the trivariate empirical mode decomposition with noise assistance (NA_TEMD), are directly employed to adaptively decompose the complex-valued quadrature composite signals echoed from both bidirectional blood flow and moving wall into a small number of zero-mean rotation components, which are defined as complex intrinsic mode functions (CIMFs). Then the relevant CIMFs contributed to blood flow components are automatically distinguished in terms of the break of the CIMFs' power, and then directly added up to give the quadrature blood flow signal. Specific simulation and human subject experiments are taken up to demonstrate the advantages and limitations of this novel method for quadrature clutter rejection in bidirectional Doppler ultrasound signals. Due to eliminating the extra errors induced by the Hilbert transform or complex FIR filter algorithms used in the traditional clutter rejection approaches based on the directional separation process, the proposed method provides improved accuracy for clutter rejection, and preserve more slow blood blow components, which could be helpful to early diagnose arterial diseases.
机译:提出了一种基于多元经验模态分解(MEMD)的正交杂波抑制方法,该方法是将经验模态分解(EMD)扩展为用于处理多通道信号的多元变量,以抑制血管壁引起的正交杂波信号。并以复合多普勒超声信号检测周围的静止或缓慢移动的组织,并以较低的速度提取更多的血流成分。在这种方法中,直接采用MEMD算法来自适应分解复杂区域,该算法包括具有用于投影方向自适应选择的非均匀采样方案的双变量经验模式分解(NS_BEMD)和具有噪声辅助的三变量经验模式分解(NA_TEMD)。双向血流和运动壁回波的高值正交复合信号进入少量零均值旋转分量,这些分量定义为复本征模函数(CIMF)。然后,根据CIMF的功率自动将导致血流成分的相关CIMF进行自动区分,然后直接加起来以给出正交的血流信号。进行了特定的仿真和人体实验,以证明这种新颖方法在双向多普勒超声信号中正交杂波抑制的优势和局限性。由于消除了基于方向分离过程的传统杂波抑制方法中使用的希尔伯特变换或复杂FIR滤波器算法引起的额外误差,因此该方法为杂波抑制提供了更高的准确性,并保留了更多的慢速吹血分量,从而可以有助于早期诊断动脉疾病。

著录项

  • 来源
    《Biomedical signal processing and control》 |2014年第9期|31-40|共10页
  • 作者单位

    Department of Electronic Engineering, Information School, Yunnan University, Kunming, Yunnan 650091, China;

    Department of Electronic Engineering, Information School, Yunnan University, Kunming, Yunnan 650091, China;

    Department of Electronic Engineering, Information School, Yunnan University, Kunming, Yunnan 650091, China;

    Department of Electronic Engineering, Information School, Yunnan University, Kunming, Yunnan 650091, China;

    Department of Electronic Engineering, Information School, Yunnan University, Kunming, Yunnan 650091, China;

    Cardiovascular Department, The Second Affiliated Hospital of Kunming Medical College, Kunming, Yunnan 650031, China;

    Cardiovascular Department, The Second Affiliated Hospital of Kunming Medical College, Kunming, Yunnan 650031, China;

    Department of Electronic Engineering, Information School, Yunnan University, Kunming, Yunnan 650091, China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Quadrature clutter rejection; Bidirectional composite Doppler ultrasound; signal; Multivariate empirical mode; decomposition; Complex intrinsic mode function;

    机译:正交杂波抑制双向复合多普勒超声;信号;多元经验模式;分解;复杂的固有模式功能;

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