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sfDM: Open-Source Software for Temporal Analysis and Visualization of Brain Tumor Diffusion MR Using Serial Functional Diffusion Mapping

机译:sfDM:使用串行功能扩散映射对脑肿瘤扩散MR进行时间分析和可视化的开源软件

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A major challenge in the diagnosis and treatment of brain tumors is tissue heterogeneity leading to mixed treatment response. Additionally, they are often difficult or at very high risk for biopsy, further hindering the clinical management process. To overcome this, novel advanced imaging methods are increasingly being adapted clinically to identify useful noninvasive biomarkers capable of disease stage characterization and treatment response prediction. One promising technique is called functional diffusion mapping (fDM), which uses diffusion-weighted imaging (DWI) to generate parametric maps between two imaging time points in order to identify significant voxel-wise changes in water diffusion within the tumor tissue. Here we introduce serial functional diffusion mapping (sfDM), an extension of existing fDM methods, to analyze the entire tumor diffusion profile along the temporal course of the disease. sfDM provides the tools necessary to analyze a tumor data set in the context of spatiotemporal parametric mapping: the image registration pipeline, biomarker extraction, and visualization tools. We present the general workflow of the pipeline, along with a typical use case for the software. sfDM is written in Python and is freely available as an open-source package under the Berkley Software Distribution (BSD) license to promote transparency and reproducibility.
机译:脑肿瘤的诊断和治疗中的主要挑战是组织异质性,导致混合治疗反应。另外,它们通常难以进行活检或具有很高的活检风险,进一步阻碍了临床管理过程。为了克服这个问题,新型的先进成像方法越来越多地在临床上用于识别能够进行疾病阶段表征和治疗反应预测的有用的非侵入性生物标记物。一种有前途的技术被称为功能扩散图谱(fDM),它使用扩散加权成像(DWI)生成两个成像时间点之间的参数图,以识别肿瘤组织内水扩散的体素显着变化。在这里,我们介绍了串行功能扩散映射(sfDM),它是现有fDM方法的扩展,可以分析沿疾病时间进程的整个肿瘤扩散曲线。 sfDM提供了在时空参数映射的背景下分析肿瘤数据集所必需的工具:图像配准管线,生物标志物提取和可视化工具。我们介绍了管道的一般工作流程,以及该软件的典型用例。 sfDM是用Python编写的,根据伯克利软件发行(BSD)许可可作为开源软件包免费获得,以提高透明度和可重复性。

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