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采用多线传输和滤波延迟的多重求和波束形成技术的高速率、高分辨率超声成像。

High Frame-Rate, High Resolution Ultrasound Imaging With Multi-Line Transmission and Filtered-Delay Multiply And Sum Beamforming.

出版信息

IEEE Trans Med Imaging. 2017 Feb;36(2):478-486. doi: 10.1109/TMI.2016.2615069. Epub 2016 Oct 4.

Abstract

Multi-Line Transmission (MLT) was recently demonstrated as a valuable tool to increase the frame rate of ultrasound images. In this approach, the multiple beams that are simultaneously transmitted may determine cross-talk artifacts that are typically reduced, although not eliminated, by the use of Tukey apodization on both transmission and reception apertures, which unfortunately worsens the image lateral resolution. In this paper we investigate the combination, and related performance, of Filtered-Delay Multiply And Sum (F-DMAS) beamforming with MLT for high frame-rate ultrasound imaging. F-DMAS is a non-linear beamformer based on the computation of the receive aperture spatial autocorrelation, which was recently proposed for use in ultrasound B-mode imaging by some of the authors. The main advantages of such beamformer are the improved contrast resolution, obtained by lowering the beam side lobes and narrowing the main lobe, and the increased noise rejection. This study shows that in MLT images, compared to standard Delay And Sum (DAS) beamforming including Tukey apodization, F-DMAS beamforming yields better suppression of cross-talk and improved lateral resolution. The method's effectiveness is demonstrated by simulations and phantom experiments. Preliminary in vivo cardiac images also show that the frame rate can be improved up to 8-fold by combining F-DMAS and MLT without affecting the image quality.

摘要

多线传输(MLT)最近被证明是一种提高超声图像帧率的有效工具。在这种方法中,同时发射的多个波束可能会导致串扰伪影,这些伪影通常可以通过在发射和接收孔径上使用 Tukey 窗函数来减少,但不幸的是,这会恶化图像的横向分辨率。在本文中,我们研究了滤波延迟乘法求和(F-DMAS)波束形成与 MLT 的结合及其在高帧率超声成像中的性能。F-DMAS 是一种基于接收孔径空间自相关计算的非线性波束形成器,最近由作者中的一些人提出用于超声 B 模式成像。这种波束形成器的主要优点是通过降低波束旁瓣和缩小主瓣来提高对比度分辨率,并提高噪声抑制能力。这项研究表明,与包括 Tukey 窗函数的标准延迟求和(DAS)波束形成相比,在 MLT 图像中,F-DMAS 波束形成可以更好地抑制串扰并提高横向分辨率。该方法的有效性通过仿真和体模实验得到了验证。初步的心脏活体图像也表明,通过结合 F-DMAS 和 MLT,帧率可以提高 8 倍,而不会影响图像质量。

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