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Eigenspace-based beamformer using oblique signal subspace projection for ultrasound plane-wave imaging

机译:基于本征空间的波束形成器,使用倾斜信号子空间投影进行超声平面波成像

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Background The Eigenspace-based beamformers, by orthogonal projection of signal subspace, can remove a large part of the noise, and provide better imaging contrast upon the minimum variance beamformer. However, wrong estimate of signal and noise component may bring dark-spot artifacts and distort the signal intensity. The signal component and noise and interference components are considered uncorrelated in conventional eigenspace-based beamforming methods. In ultrasound imaging, however, signal and noise are highly correlated. Therefore, the oblique projection instead of orthogonal projection should be taken into account in the denoising procedure of eigenspace-based beamforming algorithm. Methods In this paper, we propose a novel eigenspace-based beamformer based on the oblique subspace projection that allows for consideration of the signal and noise correlation. Signal-to-interference-pulse-noise ratio and an eigen-decomposing scheme are investigated to propose a new signal and noise subspaces identification. To calculate the beamformer weights, the minimum variance weight vector is projected onto the signal subspace along the noise subspace via an oblique projection matrix. Results We have assessed the performance of proposed beamformer by using both simulated software and real data from Verasonics system. The results have exhibited the improved imaging qualities of the proposed beamformer in terms of imaging resolution, speckle preservation, imaging contrast, and dynamic range. Conclusions Results have shown that, in ultrasound imaging, oblique projection is more sensible and effective than orthogonal subspace projection. Better signal and speckle preservation could be obtained by oblique projection compare to orthogonal projection. Also shadowing artifacts around the hyperechoic targets have been eliminated. Implementation the new subspace identification has enhanced the imaging resolution of the minimum variance beamformer due to the increasing the signal power in direction of arrival. Also it has offered better sidelobe suppression and a higher dynamic range.
机译:背景技术基于本征空间的波束形成器通过信号子空间的正交投影,可以消除大部分噪声,并在最小方差波束形成器上提供更好的成像对比度。但是,对信号和噪声分量的错误估计可能会带来暗点伪像,并使信号强度失真。在传统的基于本征空间的波束形成方法中,信号分量与噪声和干扰分量被认为是不相关的。然而,在超声成像中,信号和噪声高度相关。因此,在基于特征空间的波束形成算法的降噪过程中,应考虑倾斜投影而不是正交投影。方法在本文中,我们基于斜子空间投影提出了一种基于特征空间的新型波束形成器,该波束形成器考虑了信号和噪声的相关性。研究了信号干扰脉冲噪声比和特征分解方案,提出了一种新的信号和噪声子空间识别方法。为了计算波束形成器权重,将最小方差权重矢量通过倾斜投影矩阵沿噪声子空间投影到信号子空间上。结果我们已经使用仿真软件和Verasonics系统的真实数据评估了拟议波束成形器的性能。结果表明,在成像分辨率,散斑保留,成像对比度和动态范围方面,所提出的波束形成器的成像质量得到了改善。结论结果表明,在超声成像中,倾斜投影比正交子空间投影更明智和有效。与正交投影相比,通过倾斜投影可以获得更好的信号和斑点保留。高回声目标周围的阴影伪影也已消除。由于新的子空间识别技术在到达方向上的信号功率增加,因此提高了最小方差波束形成器的成像分辨率。它还提供了更好的旁瓣抑制和更高的动态范围。

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