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Experimental evaluation of straight ray and bent ray phase aberration correction for USCT SAFT imaging

机译:USCT SAFT成像的直射线和弯射线相位像差校正的实验评估

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In Ultrasound computer tomography (USCT) Synthetic aperture focusing technique (SAFT) is often applied for reflectivity image reconstruction. Phase aberration correction is essential to cope with the large sound speed differences in water and the different human tissues. In this paper we compare two approaches for phase aberration correction: a straight ray approximation using the Bresenham algorithm (B-SAFT) and a bent ray approximating using a multi-stencil Fast Marching Method (FMM-SAFT). The analysis is carried out with simulated point scatterers and simulated phantoms to measure the effect on the image resolution and contrast. The method is additionally applied to experimental data. B-SAFT degrades the image resolution and contrast in cases of large sound speed differences of objects and if the reconstructed point is close to a boundary where a change in impedance is present. FMM-SAFT is able to recover the image quality in these cases if the sound speed distribution is known accurately and with high resolution. If these requirements cannot be met, B-SAFT proved to be more robust.
机译:在超声计算机断层摄影(USCT)中,合成孔径聚焦技术(SAFT)通常用于反射率图像重建。相位像差校正对于应对水和不同人体组织中较大的声速差异至关重要。在本文中,我们比较了两种校正相差的方法:使用布雷森汉姆算法(B-SAFT)进行直线射线近似和使用多模板快速行进方法(FMM-SAFT)进行弯曲射线近似。使用模拟的点散射体和模拟的体模进行分析,以测量对图像分辨率和对比度的影响。该方法还适用于实验数据。如果物体的声速差异很大,并且重建点接近阻抗变化的边界,则B-SAFT会降低图像分辨率和对比度。如果准确且高分辨率地知道声速分布,则FMM-SAFT能够在这些情况下恢复图像质量。如果不能满足这些要求,则B-SAFT会更可靠。

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