IEEE Trans Ultrason Ferroelectr Freq Control. 2022 Apr;69(4):1204-1218. doi: 10.1109/TUFFC.2022.3148332. Epub 2022 Mar 30.
Lateral motion estimation has been a challenge in ultrasound elastography mainly due to the low resolution, low sampling frequency, and lack of phase information in the lateral direction. Synthetic transmit aperture (STA) can achieve high resolution due to two-way focusing and can beamform high-density image lines for improved lateral motion estimation with the disadvantages of low signal-to-noise ratio (SNR) and limited penetration depth. In this study, Hadamard-encoded STA (Hadamard-STA) is proposed for the improvement of lateral motion estimation in elastography, and it is compared with STA and conventional focused wave (CFW) imaging. Simulations, phantom, and in vivo experiments were conducted to make the comparison. The normalized root mean square error (NRMSE) and the contrast-to-noise ratio (CNR) were calculated as the evaluation criteria in the simulations. The results show that, at a noise level of -10 dB and an applied strain of -1% (compression), Hadamard-STA decreases the NRMSEs of lateral displacements by 46.92% and 35.35%, decreases the NRMSEs of lateral strains by 52.34% and 39.75%, and increases the CNRs by 9.70 and 9.75 dB compared with STA and CFW, respectively. In the phantom experiments performed on a heterogeneous tissue-mimicking phantom, the sum of squared differences (SSD) between the reference and the motion-compensated RF data, and the CNR were calculated as the evaluation criteria. At an applied strain of -1.80%, Hadamard-STA is found to decrease the SSDs by 20.91% and 30.99% and increase the CNRs by 14.15 and 24.66 dB compared with STA and CFW, respectively. In the experiments performed on a breast phantom, Hadamard-STA achieves better visualization of the breast inclusion with a clearer boundary between the inclusion and the background than STA and CFW. The in vivo experiments were performed on a patient with a breast tumor, and the tumor could also be better visualized with a more homogeneous background in the strain image obtained by Hadamard-STA than by STA and CFW. These results demonstrate that Hadamard-STA achieves a substantial improvement in lateral motion estimation and maybe a competitive method for quasi-static elastography.
侧向运动估计一直是超声弹性成像中的一个挑战,主要是由于侧向方向的分辨率低、采样频率低和缺少相位信息。合成发射孔径(STA)可以通过双向聚焦实现高分辨率,并可以对高密度图像线进行波束形成,以提高侧向运动估计的精度,但存在信噪比(SNR)低和穿透深度有限的缺点。在这项研究中,提出了基于 Hadamard 编码的 STA(Hadamard-STA),用于改善弹性成像中的侧向运动估计,并与 STA 和传统聚焦波(CFW)成像进行了比较。进行了模拟、体模和体内实验来进行比较。在模拟中,计算归一化均方根误差(NRMSE)和对比度噪声比(CNR)作为评估标准。结果表明,在噪声水平为-10dB 和施加应变-1%(压缩)的情况下,Hadamard-STA 使侧向位移的 NRMSE 分别降低了 46.92%和 35.35%,使侧向应变的 NRMSE 分别降低了 52.34%和 39.75%,并使 CNR 分别增加了 9.70dB 和 9.75dB,与 STA 和 CFW 相比。在对异质组织模拟体模进行的体模实验中,计算参考和运动补偿 RF 数据之间的平方和差(SSD)以及 CNR 作为评估标准。在施加应变-1.80%的情况下,与 STA 和 CFW 相比,Hadamard-STA 使 SSD 分别降低了 20.91%和 30.99%,并使 CNR 分别增加了 14.15dB 和 24.66dB。在对乳腺体模进行的实验中,与 STA 和 CFW 相比,Hadamard-STA 能够更好地显示乳腺包块,并能更清晰地显示包块与背景之间的边界。在对患有乳腺肿瘤的患者进行的体内实验中,与 STA 和 CFW 相比,Hadamard-STA 获得的应变图像中背景更加均匀,肿瘤也能够更好地显示。这些结果表明,Hadamard-STA 可以大大提高侧向运动估计的精度,也许是准静态弹性成像的一种有竞争力的方法。