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Prostate Segmentation in CT Images via Spatial-Constrained Transductive Lasso

机译:通过空间受限的直推拉索前列腺分割的CT图像

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摘要

Accurate prostate segmentation in CT images is a significant yet challenging task for image guided radiotherapy. In this paper, a novel semi-automated prostate segmentation method is presented. Specifically, to segment the prostate in the current treatment image, the physician first takes a few seconds to manually specify the first and last slices of the prostate in the image space. Then, the prostate is segmented automatically by the proposed two steps: (i) The first step of prostate-likelihood estimation to predict the prostate likelihood for each voxel in the current treatment image, aiming to generate the 3-D prostate-likelihood map by the proposed Spatial-COnstrained Transductive LassO (SCOTO); (ii) The second step of multi-atlases based label fusion to generate the final segmentation result by using the prostate shape information obtained from the planning and previous treatment images. The experimental result shows that the proposed method outperforms several state-of-the-art methods on prostate segmentation in a real prostate CT dataset, consisting of 24 patients with 330 images. Moreover, it is also clinically feasible since our method just requires the physician to spend a few seconds on manual specification of the first and last slices of the prostate.
机译:在CT图像中进行准确的前列腺分割对于图像引导的放射治疗是一项重要而具有挑战性的任务。在本文中,提出了一种新颖的半自动前列腺分割方法。具体地,为了分割当前治疗图像中的前列腺,医师首先花费几秒钟来手动指定图像空间中的前列腺的第一片和最后片。然后,通过建议的两个步骤自动分割前列腺:(i)前列腺似然估计的第一步,以预测当前治疗图像中每个体素的前列腺似然性,旨在通过以下方法生成3-D前列腺似然图:拟议的空间约束的转导LasO(SCOTO); (ii)基于多图谱的标签融合的第二步,通过使用从计划和先前治疗图像中获得的前列腺形状信息来生成最终的分割结果。实验结果表明,该方法在真实的前列腺CT数据集中对24位具有330张图像的患者进行的前列腺分割方面优于几种最新方法。而且,由于我们的方法仅要求医生花费几秒钟的时间来手动指定前列腺的第一片和最后片,因此这在临床上也是可行的。

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