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A novel phantom for characterization of dual energy imaging using an on-board imaging system

机译:一种新型幻像,用于使用车载成像系统表征双能成像

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Dual-energy (DE) imaging using planar imaging with an on-board imager (OBI) is being considered in radiotherapy. We describe here a custom phantom designed to optimize DE imaging parameters using the OBI of a commercial linear accelerator. The phantom was constructed of lung-, tissue- and bone-equivalent material slabs. Five simulated tumors located at two different depths were encased in the lung-equivalent materials. Two slabs with bone-equivalent material inserts were constructed to simulate ribs, which overlap the simulated tumors. DE bone suppression was performed using a weighted logarithmic subtraction based on an iterative method that minimized the contrast between simulated bone- and lung-equivalent materials. The phantom was subsequently used to evaluate different combinations of high-low kV x-ray pairs of images based on the signal-difference-to-noise ratio (SDNR) metric. The results show a strong correlation between tumor visibility and selected energy pairs, where higher energy separation leads to larger SDNR values. To evaluate the effect of image post-processing methods on tumor visibility, an anti-correlated noise reduction (ACNR) technique and adaptive kernel scatter correction method were applied to subsequent DE images. Application of the ACNR technique approximately doubled the SDNR values, hence increasing tumor visibility, while scatter correction had little effect on SDNR values. This phantom allows for quick image acquisition and optimization of imaging parameters and weighting factors. Optimized DE imaging increases soft tissue visibility and may allow for markerless motion tracking of lung tumors.
机译:使用平面成像与板载成像器(OBI)的双能量(DE)成像在放射疗法中考虑。我们在这里描述了一种自定义幻影,旨在使用商业线性加速器的OBI优化De Imaging参数。幽灵由肺,组织和骨等量的材料板构成。位于两个不同深度的五个模拟肿瘤被包裹在肺等效材料中。构造具有骨等量材料插入物的两个板以模拟与模拟肿瘤重叠的肋骨。基于迭代方法使用加权对数减法进行DE骨抑制,其最小化模拟骨和肺等效材料之间的对比度。随后使用幻像基于信号差 - 噪声比(SDNR)度量来评估高低kV X射线对图像的不同组合。结果表明肿瘤可视性和所选能量对之间的强烈相关性,其中更高的能量分离导致更大的SDNR值。为了评估图像后处理方法对肿瘤可视性的影响,将反相关降噪(ACNR)技术和自适应核散射散射校正方法应用于后续的DE图像。 ACNR技术的应用大约加倍SDNR值,因此增加了肿瘤可视性,而散射校正对SDNR值几乎没有影响。该幻像允许快速图像采集和优化成像参数和加权因子。优化的De成像增加了软组织可视性,并且可以允许肺肿瘤无价值运动跟踪。

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