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Evaluation of Cross-Protocol Stability of a Fully Automated Brain Multi-Atlas Parcellation Tool

机译:全自动大脑多图谱切分工具的跨协议稳定性评估

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摘要

Brain parcellation tools based on multiple-atlas algorithms have recently emerged as a promising method with which to accurately define brain structures. When dealing with data from various sources, it is crucial that these tools are robust for many different imaging protocols. In this study, we tested the robustness of a multiple-atlas, likelihood fusion algorithm using Alzheimer’s Disease Neuroimaging Initiative (ADNI) data with six different protocols, comprising three manufacturers and two magnetic field strengths. The entire brain was parceled into five different levels of granularity. In each level, which defines a set of brain structures, ranging from eight to 286 regions, we evaluated the variability of brain volumes related to the protocol, age, and diagnosis (healthy or Alzheimer’s disease). Our results indicated that, with proper pre-processing steps, the impact of different protocols is minor compared to biological effects, such as age and pathology. A precise knowledge of the sources of data variation enables sufficient statistical power and ensures the reliability of an anatomical analysis when using this automated brain parcellation tool on datasets from various imaging protocols, such as clinical databases.
机译:最近,基于多图集算法的脑部分割工具已成为一种准确定义脑部结构的有前途的方法。当处理来自各种来源的数据时,至关重要的是,这些工具对于许多不同的成像协议都应具有强大的功能。在这项研究中,我们使用阿尔茨海默氏病神经成像计划(ADNI)数据和六种不同的协议(包括三个制造商和两个磁场强度)测试了多图谱似然融合算法的鲁棒性。将整个大脑分成五个不同级别的粒度。在定义从8到286个区域不等的一组大脑结构的每个级别中,我们评估了与规程,年龄和诊断(健康或阿尔茨海默氏病)相关的大脑体积的变异性。我们的结果表明,通过适当的预处理步骤,与年龄和病理等生物学效应相比,不同方案的影响较小。对数据变化源的精确了解可以提供足够的统计能力,并在对来自各种成像协议(例如临床数据库)的数据集使用此自动脑部切分工具时,可以确保解剖分析的可靠性。

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