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High Frame Rate 3-D Ultrasound Imaging Using Separable Beamforming

机译:使用可分离波束成形的高帧速3-D超声成像

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Recently, there has been great interest in 3-D ultrasound imaging, but power constraints have precluded practical implementation of high-resolution and high-frame-rate 3-D ultrasound in handheld imaging platforms. In this paper, we propose a separable beamforming procedure for both 3-D synthetic aperture and plane wave systems that drastically reduces computational and hence power requirements. Separable beamforming approximates 2-D array beamforming for 3-D images through a series of beamforming operations on 1-D arrays. Our proposed method is based on a separable delay decomposition method that minimizes phase error. We show that the proposed separable synthetic aperture system achieves 19-fold complexity reduction and the proposed plane wave separable system achieves 12-fold complexity reduction compared to the corresponding non-separable beamforming baseline systems. Furthermore, we verify the performance of the fixed-point-precision separable beamforming and iterative delay calculation through Field II simulations. Our results show that both the synthetic aperture system and the plane wave system can produce images with the same quality as images generated by non-separable beamforming. We also briefly describe how the two types of separable beamformer can be implemented on a modified version of Sonic Mil-lip3De, our recently proposed hardware accelerator for the digital front-end of a 3-D ultrasound system.
机译:近来,人们对3-D超声成像产生了极大的兴趣,但是功率限制已经阻止了在手持成像平台中高分辨率和高帧速3-D超声的实际实现。在本文中,我们为3-D合成孔径和平面波系统提出了一种可分离的波束成形程序,该程序大大减少了计算量,从而降低了功率要求。通过在1-D阵列上进行一系列的波束成形操作,可分离的波束成形可近似于3-D图像的2-D阵列波束成形。我们提出的方法基于最小化相位误差的可分离延迟分解方法。我们表明,与相应的不可分离的波束形成基线系统相比,所提出的可分离的合成孔径系统实现了19倍的复杂度降低,而所提出的平面波可分离系统实现了12倍的复杂度降低。此外,我们通过Field II仿真验证了定点精度可分离波束成形和迭代延迟计算的性能。我们的结果表明,合成孔径系统和平面波系统均可以产生与通过不可分离的波束成形产生的图像质量相同的图像。我们还简要介绍了如何在Sonic Mil-lip3De的改进版本上实现这两种类型的可分离波束形成器,Sonic Mil-lip3De是我们最近提出的用于3-D超声系统数字前端的硬件加速器。

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