IEEE Trans Biomed Eng. 2018 Jul;65(7):1468-1475. doi: 10.1109/TBME.2017.2749245. Epub 2017 Sep 25.
Ultrasound-guided biopsies and minimally invasive procedures have been used in numerous medical applications, including catheter guidance. The biggest challenge for catheter guidance by ultrasound lies in distinguishing the catheter from neighboring tissue, as well as the ability to differentiate the catheter body from its tip.
In our previous work, we introduced a functional prototype of an acoustically active catheter, in which a miniature piezoelectric crystal allowed accurate localization of the catheter tip by pulsed wave (PW) Doppler imaging and Doppler spectrogram. In this paper, the theory behind the symmetric Doppler shift due to the interaction of ultrasound wave with a vibrating piezoelectric crystal is explained. The theory is validated in an experimental continuous flow phantom setup. A novel algorithm, symmetric frequency detection algorithm, is presented for identification and visualization of the catheter tip in real time along with B-mode and PW Doppler.
The catheter tip is identified with a distinct color differentiable from common Doppler colors with a frame rate varying from 22 to 50 Hz. The catheter tip can be visualized in a small region of 2.4 mm in the elevational direction.
The algorithm can be implemented in most clinical ultrasound machines with minor additions to the PW Doppler processing algorithm. The algorithm is optimized to be robust for a variety of blood flow velocities and is shown to perform well when the signal from the blood is on par in amplitude with the catheter signal.
Unambiguous and distinct visualization of catheter tip facilitates real-time tracking of the catheter and aids minimally invasive procedures.
超声引导活检和微创手术已在许多医学应用中得到应用,包括导管引导。超声引导导管的最大挑战在于区分导管与邻近组织,以及区分导管体与其尖端的能力。
在我们之前的工作中,我们引入了一种声激活导管的功能原型,其中微型压电晶体允许通过脉冲波(PW)多普勒成像和多普勒频谱图准确定位导管尖端。本文解释了由于超声波与振动压电晶体的相互作用而产生对称多普勒频移的原理。该理论在连续流幻影实验装置中得到了验证。提出了一种新的算法,即对称频率检测算法,用于实时识别和可视化导管尖端,并与 B 模式和 PW 多普勒一起显示。
导管尖端的颜色与常见的多普勒颜色不同,可以明显区分,帧率在 22 到 50 Hz 之间变化。导管尖端可以在垂直方向上 2.4 毫米的小区域内可视化。
该算法可以在大多数临床超声机中实现,只需对 PW 多普勒处理算法进行少量添加。该算法经过优化,可在各种血流速度下保持稳健,并在血液信号的幅度与导管信号相当时表现良好。
导管尖端的明确可视化有助于实时跟踪导管并辅助微创手术。