IEEE Trans Ultrason Ferroelectr Freq Control. 2018 Jun;65(6):1025-1036. doi: 10.1109/TUFFC.2018.2820747.
The axial resolution of an ultrasound imaging system is inversely proportional to the bandwidth of the emitted signal. When conventional pulsing (CP) is used, the impulse response of the transducer and the excitation signal determine together the shape of the emitted pulse and its bandwidth. A way to increase the ultrasound image resolution is to increase the transducer's limited passband. The resolution enhancement compression (REC) is a coding technique that boosts the signal energy in the transition frequency bands, where the energy transduction of the ultrasound probe is less efficient. Consequently, image quality metrics including axial resolution, signal-to-noise ratio (SNR), and contrast-to-noise ratio (CNR) can be improved. In this paper, the objective is to combine REC with coherent plane-wave compounding (CPWC) in order to achieve better image quality at an ultrafast acquisition rate. Promising results are obtained from both wire and cyst phantoms using an excitation signal designed to provide a 54% increase in bandwidth over the one obtained with a broadband pulse excitation at -6 dB. The experimental bandwidth measured from the backscattered echoes was improved by 49% for the wire phantom, when using the CPWC-REC technique compared to CPWC-CP. Furthermore, the axial resolution as derived from the modulation transfer function of the envelope of the wire target was enhanced by 29%. The CNR and SNR were improved up to 9 and up to 4 dB, respectively, in the cyst phantom. These results reveal that CPWC-REC is able to achieve higher spatial resolution, compared to CPWC-CP, with better SNR and CNR. Moreover, experimental results show that an effective implementation on a research scanner of REC using plane-wave imaging is possible. Consistent in vivo acquisition results on rabbit are presented and discussed.
超声成像系统的轴向分辨率与发射信号的带宽成反比。当使用传统脉冲(CP)时,换能器的脉冲响应和激励信号共同决定了发射脉冲的形状和带宽。提高超声图像分辨率的一种方法是增加换能器的有限通带。分辨率增强压缩(REC)是一种编码技术,可增强过渡频带中的信号能量,而超声探头的能量转换在此处效率较低。因此,可以提高包括轴向分辨率、信噪比(SNR)和对比噪声比(CNR)在内的图像质量指标。本文的目的是将 REC 与相干平面波合成(CPWC)相结合,以便在超高速采集率下实现更好的图像质量。使用旨在提供比宽带脉冲激励高 54%的带宽的激励信号,从线和囊肿体模获得了有前途的结果。与 CPWC-CP 相比,当使用 CPWC-REC 技术时,线体模的回波的测量带宽提高了 49%。此外,当从线目标的包络的调制传递函数导出时,轴向分辨率提高了 29%。在囊肿体模中,CNR 和 SNR 分别提高了 9 和 4 dB。这些结果表明,与 CPWC-CP 相比,CPWC-REC 能够实现更高的空间分辨率,同时具有更好的 SNR 和 CNR。此外,实验结果表明,在研究扫描仪上使用平面波成像实现 REC 的有效实施是可能的。呈现并讨论了在兔子上的一致的体内采集结果。