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Accelerating multi-modal image registration using a supervoxel-based variational framework

机译:使用基于SuperveOx的变分框架加速多模态图像配准

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摘要

For the successful completion of medical interventional procedures, several concepts, such as daily positioning compensation, dose accumulation or delineation propagation, rely on establishing a spatial coherence between planning images and images acquired at different time instants over the course of the therapy. To meet this need, image-based motion estimation and compensation relies on fast, automatic, accurate and precise registration algorithms. However, image registration quickly becomes a challenging and computationally intensive task, especially when multiple imaging modalities are involved.
机译:为了成功完成医疗介入程序,几种概念,例如每日定位补偿,剂量积累或描绘繁殖,依赖于在治疗过程中在不同时间瞬间获得的规划图像和图像之间的空间相干性。 为了满足这种需求,基于图像的运动估计和补偿依赖于快速,自动,准确,精确的注册算法。 然而,图像配准很快成为一个具有挑战性和计算密集的任务,特别是当涉及多个成像方式时。

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