IEEE Trans Biomed Eng. 2023 Sep;70(9):2752-2761. doi: 10.1109/TBME.2023.3263369. Epub 2023 Aug 30.
Super-resolution ultrasound (SRUS) imaging through localising and tracking sparse microbubbles has been shown to reveal microvascular structure and flow beyond the wave diffraction limit. Most SRUS studies use standard delay and sum (DAS) beamforming, where high side lobes and broad main lobes make isolation and localisation of densely distributed bubbles challenging, particularly in 3D due to the typically small aperture of matrix array probes.
This study aimed to improve 3D SRUS by implementing a new fast 3D coherence beamformer based on channel signal variance. Two additional fast coherence beamformers, that have been implemented in 2D were implemented in 3D for the first time as comparison: a nonlinear beamformer with p-th root compression and a coherence factor beamformer. The 3D coherence beamformers, together with DAS, were compared in computer simulation, on a microflow phantom and in vivo.
Simulation results demonstrated that all three adaptive weight-based beamformers can narrow the main lobe, suppress the side lobes, while maintaining the weaker scatter signals. Improved 3D SRUS images of microflow phantom and a rabbit kidney within a 3-second acquisition were obtained using the adaptive weight-based beamformers, when compared with DAS.
The adaptive weight-based 3D beamformers can improve the SRUS and the proposed variance-based beamformer performs best in simulations and experiments.
Fast 3D SRUS would significantly enhance the potential utility of this emerging imaging modality in a broad range of biomedical applications.
通过定位和跟踪稀疏微泡,超分辨率超声(SRUS)成像已被证明可以揭示超越波衍射极限的微血管结构和血流。大多数 SRUS 研究使用标准的延迟求和(DAS)波束形成,其中高旁瓣和宽主瓣使得密集分布的微泡的隔离和定位具有挑战性,尤其是在 3D 中,由于矩阵阵列探头的典型小孔径。
本研究旨在通过实施新的基于通道信号方差的快速 3D 相干波束形成器来改进 3D SRUS。首次在 3D 中实现了另外两种已在 2D 中实现的快速相干波束形成器,作为比较:具有 p 次根压缩的非线性波束形成器和相干因子波束形成器。3D 相干波束形成器与 DAS 在计算机模拟、微流幻影和体内进行了比较。
模拟结果表明,所有三种基于自适应权重的波束形成器都可以缩小主瓣,抑制旁瓣,同时保持较弱的散射信号。与 DAS 相比,使用自适应权重的波束形成器可以获得微流幻影和兔子肾脏的 3 秒采集时间内的改进的 3D SRUS 图像。
基于自适应权重的 3D 波束形成器可以改善 SRUS,基于方差的波束形成器在模拟和实验中表现最好。
快速 3D SRUS 将大大增强这种新兴成像模式在广泛的生物医学应用中的潜在应用。