论文标题

基于模型的多频准则梁超声系统的重建

Model-based Reconstruction for Multi-Frequency Collimated Beam Ultrasound Systems

论文作者

Alanazi, Abdulrahman M., Venkatakrishnan, Singanallur, Santos-Villalobos, Hector, Buzzard, Gregery T., Bouman, Charles

论文摘要

准直的超声超声系统是一项用于在多层结构(例如地热井)内进行成像的技术。这些系统通过使用准确的窄带超声发射器来工作,该发射器可以穿透多层异质材料。然后可以在多个发射频率下进行一系列测量。但是,常用的重建算法(例如合成孔径聚焦技术(SAFT))倾向于为这些系统产生质量差的重建,这两者都不模拟准确的光束系统,并且没有共同重建多个频率。 在本文中,我们提出了一种基于多频超声模型的迭代重建(UMBIR)算法,该算法专为多频率准入的光束超声超声系统而设计。组合的系统靶向异质,多层结构的反射成像。对于每个传输频带,我们引入了一个基于物理的前向模型,以准确地说明了通过多层介质的准窄频段超声梁的传播。然后,我们展示如何通过对直接到达信号,检测器噪声进行建模并在空间变化的图像之前进行建模,如何计算联合多频率Umbir重建。使用模拟和实验数据的结果表明,多频率的Umbir重建产生的重建质量比单个频率Umbir或Saft更高。

Collimated beam ultrasound systems are a technology for imaging inside multi-layered structures such as geothermal wells. These systems work by using a collimated narrow-band ultrasound transmitter that can penetrate through multiple layers of heterogeneous material. A series of measurements can then be made at multiple transmit frequencies. However, commonly used reconstruction algorithms such as Synthetic Aperture Focusing Technique (SAFT) tend to produce poor quality reconstructions for these systems both because they do not model collimated beam systems and they do not jointly reconstruct the multiple frequencies. In this paper, we propose a multi-frequency ultrasound model-based iterative reconstruction (UMBIR) algorithm designed for multi-frequency collimated beam ultrasound systems. The combined system targets reflective imaging of heterogeneous, multi-layered structures. For each transmitted frequency band, we introduce a physics-based forward model to accurately account for the propagation of the collimated narrow-band ultrasonic beam through the multi-layered media. We then show how the joint multi-frequency UMBIR reconstruction can be computed by modeling the direct arrival signals, detector noise, and incorporating a spatially varying image prior. Results using both simulated and experimental data indicate that multi-frequency UMBIR reconstruction yields much higher reconstruction quality than either single frequency UMBIR or SAFT.

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