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Monoplane Stereoscopic Imaging Method for Inverse Geometry X-ray Fluoroscopy

机译:用于逆几何X射线荧光透视的单烷烃立体成像方法

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Scanning Beam Digital X-ray (SBDX) is a low-dose inverse geometry fluoroscopic system for cardiac interventional procedures. The system performs x-ray tomosynthesis at multiple planes in each frame period and combines the tomosynthetic images into a projection-like composite image for fluoroscopic display. We present a novel method of stereoscopic imaging using SBDX, in which two slightly offset projection-like images are reconstructed from the same scan data by utilizing raw data from two different detector regions. To confirm the accuracy of the 3D information contained in the stereoscopic projections, a phantom of known geometry containing high contrast steel spheres was imaged, and the spheres were localized in 3D using a previously described stereoscopic localization method. After registering the localized spheres to the phantom geometry, the 3D residual RMS errors were between 0.81 and 1.93 mm, depending on the stereoscopic geometry. To demonstrate visualization capabilities, a cardiac RF ablation catheter was imaged with the tip oriented towards the detector. When viewed as a stereoscopic red/cyan anaglyph, the true orientation (towards vs. away) could be resolved, whereas the device orientation was ambiguous in conventional 2D projection images. This stereoscopic imaging method could be implemented in real time to provide live 3D visualization and device guidance for cardiovascular interventions using a single gantry and data acquired through normal, low-dose SBDX imaging.
机译:扫描光束数字X射线(SBDX)是一种用于心脏介入程序的低剂量逆几何荧光透视系统。该系统在每个帧周期的多个平面下执行X射线Tomosynesis,并将Tomosynthetic图像组合成用于荧光透视显示器的凸起形式的复合图像。我们介绍了一种使用SBDX立体成像的新方法,其中通过利用来自两个不同的检测器区域的原始数据,从相同的扫描数据重建两个略微偏移的投影图像。为了确认立体突起中包含的3D信息的准确性,成像含有高对比度钢球的已知几何形状的幻像,并且使用先前描述的立体定位方法将球体定位在3D中。在将局部球体注册到幻像几何形状之后,根据立体几何形状,3D残余RMS误差为0.81和1.93mm。为了证明可视化能力,用朝向检测器定向的尖端对心脏RF消融导管成像。当被视为立体红色/青色纵色图时,可以解决真正的方向(朝向远离),而在传统的2D投影图像中,设备方向在差异中含糊不清。这种立体成像方法可以实时实现,以提供使用通过正常的低剂量SBDX成像获取的单个龙门架和数据的心血管干预的实时3D可视化和设备指导。

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