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首页> 外文期刊>Ultrasonics, Ferroelectrics and Frequency Control, IEEE Transactions on >Contrast enhancement and robustness improvement of adaptive ultrasound imaging using forward-backward minimum variance beamforming
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Contrast enhancement and robustness improvement of adaptive ultrasound imaging using forward-backward minimum variance beamforming

机译:使用前后最小方差波束形成的自适应超声成像的对比度增强和鲁棒性提高

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In adaptive ultrasound imaging, accurate estimation of the array covariance matrix is of great importance, and biases the performance of the adaptive beamformer. The more accurately the covariance matrix can be estimated, the better the resolution and contrast can be achieved in the ultrasound image. To this end, in this paper, we have used the forwardbackward spatial averaging for array covariance matrix estimation, which is then employed in minimum variance (MV) weights calculation. The performance of the proposed forwardbackward MV (FBMV) beamformer is tested on simulated data obtained using Field II. Data for two closely located point targets surrounded by speckle pattern are simulated showing the higher amplitude resolution of the FBMV beamformer in comparison to the forward-only (F-only) MV beamformers, without the need for diagonal loading. A circular cyst with a diameter of 6 mm and a phantom containing wire targets and two cysts with different diameters of 8 mm and 6 mm are also simulated. The simulations show that the FBMV beamformer, in contrast to the F-only MV, could estimate the background speckle statistics without the need for temporal smoothing, resulting in higher contrast for the FBMV-resulted image in comparison to the MV images. In addition, the effect of steering vector errors is investigated by applying an error of the sound speed estimate to the ultrasound data. The simulations show that the proposed FBMV beamformer presents a satisfactory robustness against data misalignment resulted from steering vector errors, outperforming the regularized F-only MV beamformer. These improvements are achieved without compromising the good resolution of the MV beamformer and resulted from more accurate estimation of the covariance matrix and consequently, the more accurate setting of the MV weights.
机译:在自适应超声成像中,精确估计阵列协方差矩阵非常重要,这会使自适应波束形成器的性能产生偏差。协方差矩阵的估计越准确,超声图像中的分辨率和对比度就越好。为此,在本文中,我们将前向空间平均用于数组协方差矩阵估计,然后将其用于最小方差(MV)权重计算。在使用Field II获得的模拟数据上测试了所提出的前向MV(FBMV)波束形成器的性能。模拟了两个散布在斑点附近的点目标的数据,表明与仅向前(仅F)的MV波束形成器相比,FBMV波束形成器的幅度分辨率更高,而无需对角线加载。还模拟了直径为6 mm的圆形囊肿和包含金属丝靶的幻影,以及两个直径分别为8 mm和6 mm的囊肿。仿真表明,与仅使用F的MV相比,FBMV波束形成器无需进行时间平滑就可以估计背景散斑统计数据,与MV图像相比,FBMV结果图像的对比度更高。另外,通过将声速估计的误差应用于超声数据来研究转向矢量误差的影响。仿真结果表明,所提出的FBMV波束形成器对转向矢量误差导致的数据失准具有令人满意的鲁棒性,优于常规的仅F MV波束形成器。这些改进是在不损害MV波束形成器的良好分辨率的情况下实现的,并且是由于协方差矩阵的估算更加准确,因此MV权重的设置更加准确。

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