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Integrated Spatio-Temporal Segmentation of Longitudinal Brain Tumor Imaging Studies

机译:纵向脑肿瘤成像研究的综合时空分割

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Consistent longitudinal segmentation of brain tumor images is a critical issue in treatment monitoring and in clinical trials. Fully automatic segmentation methods are a good candidate for reliably detecting changes of tumor volume over time. We propose an integrated 4D spatio-temporal brain tumor segmentation method, which combines supervised classification with conditional random field regularization in an energy minimization scheme. Promising results and improvements over classic 3D methods for monitoring the temporal volumetric evolution of necrotic, active and edema tumor compartments are demonstrated on a longitudinal dataset of glioma patient images from a multi-center clinical trial. Thanks to its speed and simplicity the approach is a good candidate for standard clinical use.
机译:脑肿瘤图像的一致纵向分割是治疗监测和临床试验中的关键问题。全自动分割方法是可靠地检测肿瘤体积随时间变化的良好候选者。我们提出了一种集成的4D时空脑肿瘤分割方法,其在能量最小化方案中将监督分类与条件随机场正则化相结合。在来自多中心临床试验的胶质瘤患者图像的纵向数据集上证明了对监测坏死,活性和水肿肿瘤隔室的时间体积演变的经典3D方法的承诺结果和改进。由于其速度和简单性,这种方法是标准临床使用的良好候选者。

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