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Automatic Brain Organ Segmentation with 3D Fully Convolutional Neural Network for Radiation Therapy Treatment Planning

机译:具有3D完全卷积神经网络的自动脑器官分割,用于放射治疗治疗计划

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3D organ contouring is an essential step in radiation therapy treatment planning for organ dose estimation as well as for optimizing plans to reduce organs-at-risk doses. Manual contouring is time-consuming and its inter-clinician variability adversely affects the outcomes study. Such organs also vary dramatically on sizes - up to two orders of magnitude difference in volumes. In this paper, we present BrainSegNet, a novel 3D fully convolutional neural network (FCNN) based approach for automatic segmentation of brain organs. Brain-SegN et takes a multiple resolution paths approach and uses a weighted loss function to solve the major challenge of the large variability in organ sizes. We evaluated our approach with a dataset of 46 Brain CT image volumes with corresponding expert organ contours as reference. Compared with those of LiviaNet and V-Net, BrainSegNet has a superior performance in segmenting tiny or thin organs, such as chiasm, optic nerves, and cochlea, and outperforms these methods in segmenting large organs as well. BrainSegNet can reduce the manual contouring time of a volume from an hour to less than two minutes, and holds high potential to improve the efficiency of radiation therapy workflow.
机译:3D器官轮廓检查是放射治疗治疗计划中器官剂量估计以及优化计划以减少器官风险剂量的必不可少的步骤。手动轮廓绘制非常耗时,而且其临床医生之间的差异会对结果研究产生不利影响。这些器官的大小也相差很大-体积差异最多可达两个数量级。在本文中,我们介绍了BrainSegNet,这是一种新颖的基于3D全卷积神经网络(FCNN)的大脑器官自动分割方法。 Brain-SegN等人采用多分辨率路径方法,并使用加权损失函数来解决器官大小变化较大的主要挑战。我们使用46个脑部CT图像量的数据集评估了我们的方法,并以相应的专家器官轮廓作为参考。与LiviaNet和V-Net相比,BrainSegNet在分割细小或较薄的器官(如黑斑病,视神经和耳蜗)方面具有优越的性能,并且在分割大器官方面也优于这些方法。 BrainSegNet可以将体积的手动轮廓绘制时间从一小时减少到不到两分钟,并具有提高放射治疗工作流程效率的巨大潜力。

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