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Dynamic lung modeling and tumor tracking using deformable image registration and geometric smoothing

机译:使用可变形图像配准和几何平滑进行动态肺部建模和肿瘤追踪

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摘要

A greyscale-based fully automatic deformable image registration algorithm, based on an optical flow method together with geometric smoothing, is developed for dynamic lung modeling and tumor tracking. In our computational processing pipeline, the input data is a set of 4D CT images with 10 phases. The triangle mesh of the lung model is directly extracted from the more stable exhale phase (Phase 5). In addition, we represent the lung surface model in 3D volumetric format by applying a signed distance function and then generate tetrahedral meshes. Our registration algorithm works for both triangle and tetrahedral meshes. In CT images, the intensity value reflects the local tissue density. For each grid point, we calculate the displacement from the static image (Phase 5) to match with the moving image (other phases) by using merely intensity values of the CT images. The optical flow computation is followed by a regularization of the deformation field using geometric smoothing. Lung volume change and the maximum lung tissue movement are used to evaluate the accuracy of the application. Our testing results suggest that the application of deformable registration algorithm is an effective way for delineating and tracking tumor motion in image-guided radiotherapy.
机译:基于光流方法和几何平滑的基于灰度的全自动可变形图像配准算法被开发用于动态肺部建模和肿瘤追踪。在我们的计算处理管道中,输入数据是一组具有10个相位的4D CT图像。肺模型的三角形网格直接从更稳定的呼气阶段(阶段5)提取。此外,我们通过应用带符号的距离函数以3D体积格式表示肺表面模型,然后生成四面体网格。我们的配准算法适用于三角形和四面体网格。在CT图像中,强度值反映了局部组织密度。对于每个网格点,我们仅使用CT图像的强度值即可计算出与静态图像(第5阶段)相匹配的位移,以与运动图像(其他相位)相匹配。在光流计算之后,使用几何平滑对变形场进行正则化。肺体积变化和最大肺组织运动用于评估应用的准确性。我们的测试结果表明,可变形配准算法的应用是在图像引导放射治疗中描绘和追踪肿瘤运动的有效方法。

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