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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Multi-line transmission combined with minimum variance beamforming in medical ultrasound imaging
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Multi-line transmission combined with minimum variance beamforming in medical ultrasound imaging

机译:多线传输与最小方差波束形成相结合的医学超声成像

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Increasing medical ultrasound imaging frame rate is important in several applications such as cardiac diagnostic imaging, where it is desirable to be able to examine the temporal behavior of fast phases in the cardiac cycle. This is particularly true in 3-D imaging, where current frame rate is still much slower than standard 2-D, B-mode imaging. Recently, a method that increases frame rate, labeled multi-line transmission (MLT), was reintroduced and analyzed. In MLT scanning, the transmission is simultaneously focused at several directions. This scan mode introduces artifacts that stem from the overlaps of the receive main lobe with the transmit side lobes of additional transmit directions besides the one of interest. Similar overlaps occur between the transmit main lobe with receive side lobes. These artifacts are known in the signal processing community as cross-talk. Previous studies have concentrated on proper transmit and receive apodization, as well as transmit directions arrangement in the transmit event, to reduce the cross-talk artifacts. This study examines the possibility of using adaptive beamforming, specifically, minimum variance (MV) and linearly constrained minimum variance (LCMV) beamforming, to reduce the cross-talk artifacts, and maintain or even improve image quality characteristics. Simulation results, as well as experimental phantom and in vivo cardiac data, demonstrate the feasibility of reducing cross-talk artifacts with MV beamforming. The MV and LCMV results achieve superior spatial resolution, not only over other MLT methods with data-independent apodization, but even over that of single-line transmission (SLT) without receive apodization. The MV beamformer is shown to be less sensitive to wider transmit profiles required to reduce the transmit crosstalk artifacts. MV beamforming, combined with the wider transmit profiles, can provide a good approach for MLT scanning with reduced cross-talk artifacts, without compromising spatial resoluti- n, and even improving it. We also demonstrate that the MV and LCMV beamformers lead to almost identical results. This is because of their very similar beampatterns, except for the sharp nullifying properties that the LCMV beamformer has around interfering beams.
机译:在诸如心脏诊断成像的一些应用中,增加医学超声成像的帧速率非常重要,在这些应用中,人们希望能够检查心动周期中快速相的时间行为。在3-D成像中尤其如此,当前的帧速率仍比标准2-D B模式成像慢得多。最近,重新引入并分析了一种提高帧速率的方法,称为多线传输(MLT)。在MLT扫描中,传输同时聚焦在多个方向上。这种扫描模式会引入伪影,这些伪影源自接收主波瓣与除感兴趣的波瓣以外的其他发送方向的发送侧波瓣的重叠。发射主瓣与接收旁瓣之间也发生类似的重叠。这些伪像在信号处理社区中被称为串扰。先前的研究集中在适当的发射和接收变迹以及发射事件中的发射方向安排上,以减少串扰伪像。这项研究研究了使用自适应波束成形,特别是最小方差(MV)和线性约束最小方差(LCMV)波束成形,以减少串扰伪像,并保持甚至改善图像质量特性的可能性。仿真结果,以及实验体模和体内心脏数据,证明了利用MV波束成形减少串扰伪像的可行性。 MV和LCMV结果不仅在具有数据无关切趾的其他MLT方法上达到了卓越的空间分辨率,甚至在没有接收切趾的单线传输(SLT)上也达到了优异的空间分辨率。 MV波束形成器显示出对减少传输串扰伪像所需的较宽的传输配置文件不那么敏感。 MV波束成形与更宽的传输范围相结合,可以为MLT扫描提供一种减少串扰伪像的好方法,而不会影响空间分辨率,甚至不会改善空间分辨率。我们还证明了MV和LCMV波束形成器可导致几乎相同的结果。这是因为它们的波束图非常相似,除了LCMV波束形成器在干扰波束周围具有明显的消隐特性外。

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