Biomedical Engineering Institute, Kaunas University of Technology, K. Baršausko Str. 59-455, LT-51423 Kaunas, Lithuania.
Sensors (Basel). 2021 Jun 28;21(13):4420. doi: 10.3390/s21134420.
Ultrasound echoscopy technologies are continuously evolving towards new modalities including quantitative parameter imaging, elastography, 3D scanning, and others. The development and analysis of new methods and algorithms require an adequate digital simulation of radiofrequency (RF) signal transformations. The purpose of this paper is the quantitative evaluation of RF signal simulation uncertainties in resolution and contrast reproduction with the model of a phased array transducer. The method is based on three types of standard physical phantoms. Digital 3D models of those phantoms are composed of point scatterers representing the weak backscattering of the background material and stronger backscattering from inclusions. The simulation results of echoscopy with sector scanning transducer by Field II software are compared with the RF output of the Ultrasonix scanner after scanning standard phantoms with 2.5 MHz phased array. The quantitative comparison of axial, lateral, and elevation resolutions have shown uncertainties from 9 to 22% correspondingly. The echoscopy simulation with two densities of scatterers is compared with contrast phantom imaging on the backscattered RF signals and B-scan reconstructed image, showing that the main sources of uncertainties limiting the echoscopy RF signal simulation adequacy are an insufficient knowledge of the scanner and phantom's parameters. The attempt made for the quantitative evaluation of simulation uncertainties shows both problems and the potential of echoscopy simulation in imaging technology developments. The analysis presented could be interesting for researchers developing quantitative ultrasound imaging and elastography technologies looking for simulated raw RF signals comparable to those obtained from real ultrasonic scanning.
超声内镜技术不断朝着新的模式发展,包括定量参数成像、弹性成像、3D 扫描等。新方法和算法的开发和分析需要对射频(RF)信号转换进行充分的数字模拟。本文的目的是定量评估相控阵换能器模型中分辨率和对比度再现的 RF 信号模拟不确定性。该方法基于三种类型的标准物理体模。这些体模的数字 3D 模型由代表背景材料弱背散射和来自内含物的强背散射的点状散射体组成。Field II 软件对扇形扫描换能器进行的超声内镜模拟结果与 Ultrasonix 扫描仪的 RF 输出进行了比较,后者在使用 2.5MHz 相控阵扫描标准体模后进行了扫描。轴向、侧向和仰角分辨率的定量比较显示相应的不确定性为 9%至 22%。用两种密度散射体进行的超声内镜模拟与背向散射 RF 信号和 B 扫描重建图像上的对比体模成像进行了比较,结果表明,限制 RF 信号模拟充分性的主要不确定性源是对扫描仪和体模参数的了解不足。对模拟不确定性进行定量评估的尝试显示了超声内镜模拟在成像技术发展中的问题和潜力。所提出的分析对于开发定量超声成像和弹性成像技术的研究人员可能会很感兴趣,他们正在寻找与从真实超声扫描获得的 RF 信号相媲美的模拟原始 RF 信号。