IEEE Trans Ultrason Ferroelectr Freq Control. 2018 Apr;65(4):535-545. doi: 10.1109/TUFFC.2018.2794219.
Increased frame rate is of high importance to cardiac diagnostic imaging as it enables examination of fast events during the cardiac cycle and improved quantitative analysis, such as speckle tracking. Multiline transmission (MLT) is one of the methods proposed for this purpose. In contrast to the single-line transmission (SLT), where one focused beam is sent in each direction, MLT beams are simultaneously transmitted and focused in several ( ) directions improving the frame rate accordingly. The simultaneous transmission is known to cause crosstalk artifacts due to the interference between the main lobes and the sidelobes of the transmitted and received beams. Usually, the artifacts are attenuated using a Tukey window apodization, but the lateral resolution is degraded. Several other methods, such as minimum variance beamforming and filtered delay multiply and sum beamforming were proposed to deal with these artifacts. The assumption examined in this paper is that a receive apodization can be chosen adaptively from a number of apodization windows in order to provide better artifact rejection and to increase the spatial resolution. The entire study was performed on an experimental MLT data set including wire and tissue mimicking phantoms, as well as in vivo cardiac data. The results demonstrate that application of a predefined apodization bank outperforms Tukey windowing alone, in terms of both resolution and receive crosstalk artifact rejections. Moreover, the achieved spatial resolution is superior to the nonapodized SLT, as measured from wire phantoms. The proposed method can also be combined with wider transmit beams, suitable for multiline acquisition.
提高帧率对于心脏诊断成像至关重要,因为它能够检查心脏周期内的快速事件,并改善定量分析,如斑点跟踪。多线传输 (MLT) 是为此目的提出的方法之一。与单线传输 (SLT) 不同,单线传输在每个方向发送一个聚焦波束,MLT 波束同时在多个方向传输和聚焦,从而相应地提高帧率。由于传输和接收波束的主瓣和旁瓣之间的干扰,同时传输已知会引起串扰伪影。通常,使用 Tukey 窗口变迹来衰减伪影,但会降低横向分辨率。已经提出了几种其他方法,例如最小方差波束形成和滤波延迟乘法和求和波束形成,以处理这些伪影。本文检验的假设是,可以从多个变迹窗口中自适应地选择接收变迹,以提供更好的伪影抑制并提高空间分辨率。整个研究是在包括线和组织模拟体模以及体内心脏数据的实验性 MLT 数据集上进行的。结果表明,与单独使用 Tukey 窗口相比,应用预定义变迹库在分辨率和接收串扰伪影抑制方面都表现出色。此外,所获得的空间分辨率优于非变迹 SLT,从线体模测量。所提出的方法还可以与更宽的发射波束结合使用,适用于多线采集。