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A biomechanical modeling-guided simultaneous motion estimation and image reconstruction technique (SMEIR-Bio) for 4D-CBCT reconstruction

机译:用于4D-CBCT重建的生物力学建模指导的同时运动估计和图像重建技术(SMEIR-Bio)

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摘要

Reconstructing four-dimensional cone-beam computed tomography (4D-CBCT) images directly from respiratory phase-sorted traditional 3D-CBCT projections can capture target motion trajectory, reduce motion artifacts, and reduce imaging dose and time. However, the limited numbers of projections in each phase after phase-sorting decreases CBCT image quality under traditional reconstruction techniques. To address this problem, we developed a simultaneous motion estimation and image reconstruction (SMEIR) algorithm, an iterative method that can reconstruct higher quality 4D-CBCT images from limited projections using an inter-phase intensity-driven motion model. However, the accuracy of the intensity-driven motion model is limited in regions with fine details whose quality is degraded due to insufficient projection number, which consequently degrades the reconstructed image quality in corresponding regions. In this study, we developed a new 4D-CBCT reconstruction algorithm by introducing biomechanical modeling into SMEIR (SMEIR-Bio) to boost the accuracy of the motion model in regions with small fine structures. The biomechanical modeling uses tetrahedral meshes to model organs of interest and solves internal organ motion using tissue elasticity parameters and mesh boundary conditions. This physics-driven approach enhances the accuracy of solved motion in the organ’s fine structures regions. This study used 11 lung patient cases to evaluate the performance of SMEIR-Bio, making both qualitative and quantitative comparisons between SMEIR-Bio, SMEIR, and the algebraic reconstruction technique with total variation regularization (ART-TV). The reconstruction results suggest that SMEIR-Bio improves the motion model’s accuracy in regions containing small fine details, which consequently enhances the accuracy and quality of the reconstructed 4D-CBCT images.
机译:直接从呼吸相位排序的传统3D-CBCT投影重建三维锥形束计算机断层扫描(4D-CBCT)图像可以捕获目标运动轨迹,减少运动伪像并减少成像剂量和时间。然而,在传统的重建技术下,相位分类后每个相位中有限数量的投影会降低CBCT图像质量。为了解决这个问题,我们开发了一种同时运动估计和图像重建(SMEIR)算法,该算法可以使用相间强度驱动的运动模型从有限的投影中重建更高品质的4D-CBCT图像。然而,强度驱动的运动模型的精度在具有精细细节的区域中受到限制,这些细节的质量由于投影数量不足而降低了质量,从而降低了相应区域中重建图像的质量。在这项研究中,我们通过将生物力学建模引入SMEIR(SMEIR-Bio),开发了一种新的4D-CBCT重建算法,以提高运动模型在细小结构区域中的准确性。生物力学建模使用四面体网格来建模感兴趣的器官,并使用组织弹性参数和网格边界条件来解决内部器官的运动。这种由物理驱动的方法提高了器官精细结构区域中已解决运动的准确性。这项研究使用11例肺部患者来评估SMEIR-Bio的性能,对SMEIR-Bio,SMEIR和采用总变异正则化(ART-TV)的代数重建技术进行了定性和定量比较。重建结果表明,SMEIR-Bio提高了运动模型在细小细节区域的准确性,从而提高了重建4D-CBCT图像的准确性和质量。

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