IEEE Trans Ultrason Ferroelectr Freq Control. 2014 Mar;61(3):407-19. doi: 10.1109/TUFFC.2014.2926.
An efficient block matching and spectral shift estimation algorithm for freehand quasi-static ultrasound elastography is described in this paper. The proposed method provides a balance between computational speed and robustness against displacement estimation error and bias; a fundamental aspect of elastography. The new algorithm was tested on an extensive set of simulated 1-D RF ultrasound signals, replicating various strain profiles. Additionally, real 2-D scans were conducted on an ultrasound phantom with prescribed elastic properties; the algorithm output was further validated with a comparison to a finite element model (FEM) of the phantom. Clinical data from a breast cancer study and histology slides were used to demonstrate the in vivo use of the new elastography technique. The algorithm showed a significant computational savings (at least 60 times faster) over existing spectral shift analysis methods. Accurate strain images were produced in as little as 2 s with the scope for further speed enhancements through parallel processing; making real-time implementation a future possibility. Moreover, it demonstrated a robustness toward displacement estimation error when compared with conventional gradient-based techniques, and was able to perform at high strain values (>5%) while showing relative insensitivity to various parameters settings, such as sample rate and block window size; a desirable performance for a practical clinical tool.
本文描述了一种用于自由-hand 准静态超声弹性成像的高效块匹配和频谱偏移估计算法。所提出的方法在位移估计误差和偏差的稳健性方面实现了计算速度和稳健性之间的平衡,这是弹性成像的一个基本方面。新算法在广泛的一维 RF 超声信号模拟集上进行了测试,模拟了各种应变分布。此外,还在具有规定弹性特性的超声体模上进行了二维实时扫描,将算法输出与体模的有限元模型 (FEM) 进行了比较,进一步验证了算法的结果。从乳腺癌研究和组织学切片的临床数据中,展示了新弹性成像技术的体内应用。与现有的频谱偏移分析方法相比,该算法具有显著的计算节省(至少快 60 倍)。通过并行处理,可以在 2 秒内生成精确的应变图像,并且具有进一步提高速度的潜力,从而实现实时实现成为可能。此外,与传统的基于梯度的技术相比,该算法在位移估计误差方面表现出较强的稳健性,并且能够在高应变值(>5%)下运行,同时对各种参数设置(如采样率和块窗口大小)表现出相对不敏感,这是实用临床工具的理想性能。