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使用透射几何结构对波束形成声速进行分析估计。

Analytical estimation of beamforming speed-of-sound using transmission geometry.

作者信息

Bezek Can Deniz, Goksel Orcun

机构信息

Department of Information Technology, Uppsala University, Sweden.

Department of Information Technology, Uppsala University, Sweden.

出版信息

Ultrasonics. 2023 Sep;134:107069. doi: 10.1016/j.ultras.2023.107069. Epub 2023 Jun 7.

Abstract

Most ultrasound imaging techniques necessitate the fundamental step of converting temporal signals received from transducer elements into a spatial echogenecity map. This beamforming (BF) step requires the knowledge of speed-of-sound (SoS) value in the imaged medium. An incorrect assumption of BF SoS leads to aberration artifacts, not only deteriorating the quality and resolution of conventional brightness mode (B-mode) images, hence limiting their clinical usability, but also impairing other ultrasound modalities such as elastography and spatial SoS reconstructions, which rely on faithfully beamformed images as their input. In this work, we propose an analytical method for estimating BF SoS. We show that pixel-wise relative shifts between frames beamformed with an assumed SoS is a function of geometric disparities of the transmission paths and the error in such SoS assumption. Using this relation, we devise an analytical model, the closed form solution of which yields the difference between the assumed and the true SoS in the medium. Based on this, we correct the BF SoS, which can also be applied iteratively. Both in simulations and experiments, lateral B-mode resolution is shown to be improved by ≈25% compared to that with an initial SoS assumption error of 3.3% (50m/s), while localization artifacts from beamforming are also corrected. After 5 iterations, our method achieves BF SoS errors of under 0.6m/s in simulations. Residual time-delay errors in beamforming 32 numerical phantoms are shown to reduce down to 0.07μs, with average improvements of up to 21 folds compared to initial inaccurate assumptions. We additionally show the utility of the proposed method in imaging local SoS maps, where using our correction method reduces reconstruction root-mean-square errors substantially, down to their lower-bound with actual BF SoS.

摘要

大多数超声成像技术都需要一个基本步骤,即将从换能器元件接收到的时间信号转换为空间回声图。这个波束形成(BF)步骤需要知道成像介质中的声速(SoS)值。对BF SoS的错误假设会导致像差伪像,不仅会降低传统亮度模式(B模式)图像的质量和分辨率,从而限制其临床可用性,还会损害其他超声模态,如弹性成像和空间SoS重建,这些模态依赖于精确波束形成的图像作为输入。在这项工作中,我们提出了一种估计BF SoS的分析方法。我们表明,用假定的SoS进行波束形成的帧之间的逐像素相对偏移是传输路径几何差异和该SoS假设误差的函数。利用这种关系,我们设计了一个分析模型,其闭式解得出假定的SoS与介质中真实SoS之间的差异。基于此,我们对BF SoS进行校正,该校正也可以迭代应用。在模拟和实验中,横向B模式分辨率与初始SoS假设误差为3.3%(50m/s)时相比提高了约25%,同时波束形成的定位伪像也得到了校正。经过5次迭代后,我们的方法在模拟中实现了BF SoS误差低于0.6m/s。对32个数值体模进行波束形成时,残余时延误差降低至0.07μs,与初始不准确假设相比平均改善高达21倍。我们还展示了所提方法在成像局部SoS图方面的效用,其中使用我们的校正方法可大幅降低重建均方根误差,直至达到实际BF SoS时的下限。

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