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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Adaptive clutter filtering based on sparse component analysis in ultrasound color flow imaging
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Adaptive clutter filtering based on sparse component analysis in ultrasound color flow imaging

机译:基于稀疏成分分析的自适应杂波滤波在超声彩色流成像中的应用

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摘要

An adaptive method based on the sparse component analysis is proposed for stronger clutter filtering in ultrasound color flow imaging (CFI). In the present method, the focal underdetermined system solver (FOCUSS) algorithm is employed, and the iteration of the algorithm is based on weighted norm minimization of the dependent variable with the weights being a function of the preceding iterative solutions. By finding the localized energy solution vector representing strong clutter components, the FOCUSS algorithm first extracts the clutter from the original signal. However, the different initialization of the basis function matrix has an impact on the filtering performance of FOCUSS algorithms. Thus, 2 FOCUSS clutter- filtering methods, the original and the modified, are obtained by initializing the basis function matrix using a predetermined set of monotone sinusoids and using the discrete Karhunen-Loeve transform (DKLT) and spatial averaging, respectively. Validation of 2 FOCUSS filtering methods has been performed through experimental tests, in which they were compared with several conventional clutter filters using simplistic simulated and gathered clinical data. The results demonstrate that 2 FOCUSS filtering methods can follow signal varying adaptively and perform clutter filtering effectively. Moreover, the modified method may obtain the further improved filtering performance and retain more blood flow information in regions close to vessel walls.
机译:提出了一种基于稀疏分量分析的自适应方法,用于超声彩色流成像(CFI)中更强的杂波滤波。在本方法中,采用了焦点不确定系统求解器(FOCUSS)算法,并且算法的迭代基于因变量的加权范数最小化,其权重是先前迭代解的函数。通过找到代表强杂波分量的局部能量解矢量,FOCUSS算法首先从原始信号中提取杂波。但是,基函数矩阵的不同初始化会影响FOCUSS算法的过滤性能。因此,通过使用一组预定的单调正弦波初始化基函数矩阵并分别使用离散Karhunen-Loeve变换(DKLT)和空间平均来初始化原始和改进的2种FOCUSS杂波滤波方法。已通过实验测试对2种FOCUSS滤波方法进行了验证,其中使用简单的模拟和收集的临床数据将它们与几种常规的杂波滤波器进行了比较。结果表明,两种FOCUSS滤波方法可以适应信号的变化并有效地进行杂波滤波。而且,改进的方法可以获得进一步改善的过滤性能,并且在靠近血管壁的区域中保留更多的血流信息。

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