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基于分形的脑胶质母细胞瘤形态计量学

Fractal-Based Morphometrics of Glioblastoma.

机构信息

Mathematical NeuroOncology Lab, Mayo Clinic, Phoenix, AZ, USA.

出版信息

Adv Neurobiol. 2024;36:545-555. doi: 10.1007/978-3-031-47606-8_28.

Abstract

Morphometrics have been able to distinguish important features of glioblastoma from magnetic resonance imaging (MRI). Using morphometrics computed on segmentations of various imaging abnormalities, we show that the average and range of lacunarity and fractal dimension values across MRI slices can be prognostic for survival. We look at the repeatability of these metrics to multiple segmentations and how they are impacted by image resolution. We speak to the challenges to overcome before these metrics are included in clinical care, and the insight that they may provide.

摘要

形态计量学能够从磁共振成像(MRI)中区分胶质母细胞瘤的重要特征。我们使用对各种成像异常进行分割计算出的形态计量学,表明 MRI 切片中 lacunarity 和分形维数的平均值和范围可用于预测生存。我们研究了这些指标在多次分割中的可重复性以及它们受图像分辨率的影响。我们讨论了在将这些指标纳入临床护理之前需要克服的挑战,以及它们可能提供的见解。

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