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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >User Parameter-Free Minimum Variance Beamformer in Medical Ultrasound Imaging
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User Parameter-Free Minimum Variance Beamformer in Medical Ultrasound Imaging

机译:医疗超声成像中的无参数最小方差波束形成器

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摘要

The minimum variance beamformer (MVB) is a well-known adaptive beamformer in medical ultrasound imaging. Accurate estimation of the covariance matrix has a great effect on the performance of the MVB. In adaptive ultrasound imaging, parameters such as the subarray length, the number of samples used for temporal averaging, and the value of diagonal loading (DL) have the main role in the true estimation of the covariance matrix. The optimal values for these parameters are different from one scenario to another one. Thus, the MVB is not a parameter-free method, and its behavior is scenario-dependent. In the field of telecommunications and radar, the shrinkage method was proposed to determine the DL factor, but no method has been provided yet to determine other parameters. In this article, an adaptive approach is developed to determine the MVB parameters, which is completely independent of the user. The minimum variance variable loading along with the modified shrinkage (MVVL-MSh) algorithm is introduced to adaptively calculate the optimal DL. Also, two methods based on the coherence factor (CF) are proposed to determine the subarray length in the spatial smoothing and the number of samples required for temporal averaging. The performance of the proposed methods is evaluated using simulated and experimental RF data. It is shown that the methods preserve the contrast and improve the resolution by about 35% and 38% compared to the MV having a fix loading coefficient and the MV-Sh algorithm.
机译:最小方差波束形成器(MVB)是医用超声成像中的众所周知的自适应波束形成器。协方差矩阵的准确估计对MVB的性能产生了很大的影响。在自适应超声成像中,诸如子阵列长度的参数,用于时间平均的样本的数量以及对角线加载(DL)的值在协方差矩阵的真实估计中具有主要作用。这些参数的最佳值与另一个场景不同。因此,MVB不是无参数方法,其行为是依赖的场景。在电信和雷达领域,提出了收缩方法以确定DL因子,但没有提供方法来确定其他参数。在本文中,开发了一种自适应方法以确定MVB参数,其完全独立于用户。引入了与修改的收缩(MVVL-MSH)算法一起进行的最小方差变量加载以自适应地计算最佳DL。此外,提出了一种基于相干因子(CF)的方法来确定空间平滑中的子阵列长度和时间平均所需的样本数。使用模拟和实验RF数据评估所提出的方法的性能。结果表明,与具有固定负载系数和MV-SH算法的MV相比,该方法保持对比度并提高分辨率约35%和38%。

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