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Biological Parametric Mapping: A Statistical Toolbox for Multi-Modality Brain Image Analysis

机译:生物参数映射:用于多模式脑图像分析的统计工具箱

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摘要

In recent years multiple brain MR imaging modalities have emerged; however, analysis methodologies have mainly remained modality specific. In addition, when comparing across imaging modalities, most researchers have been forced to rely on simple region-of-interest type analyses, which do not allow the voxel-by-voxel comparisons necessary to answer more sophisticated neuroscience questions. To overcome these limitations, we developed a toolbox for multimodal image analysis called biological parametric mapping (BPM), based on a voxel-wise use of the general linear model. The BPM toolbox incorporates information obtained from other modalities as regressors in a voxel-wise analysis, thereby permitting investigation of more sophisticated hypotheses. The BPM toolbox has been developed in MATLAB with a user friendly interface for performing analyses, including voxel-wise multimodal correlation, ANCOVA, and multiple regression. It has a high degree of integration with the SPM (statistical parametric mapping) software relying on it for visualization and statistical inference. Furthermore, statistical inference for a correlation field, rather than a widely-used T-field, has been implemented in the correlation analysis for more accurate results. An example with in-vivo data is presented demonstrating the potential of the BPM methodology as a tool for multimodal image analysis.
机译:近年来,出现了多种脑部MR成像方式。但是,分析方法主要仍然是特定于方式的。此外,在跨成像方式进行比较时,大多数研究人员被迫依靠简单的关注区域类型分析,而这种分析不允许进行逐个体素比较,以回答更复杂的神经科学问题。为了克服这些局限性,我们在基于体素的通用线性模型的基础上,开发了用于生物医学参数映射(BPM)的多模式图像分析工具箱。 BPM工具箱将从其他模态中获得的信息作为回归进行体素分析,从而可以研究更复杂的假设。 BPM工具箱是在MATLAB中开发的,具有易于使用的用户界面,用于执行分析,包括体素方式多模态关联,ANCOVA和多元回归。它与依靠它进行可视化和统计推断的SPM(统计参数映射)软件高度集成。此外,在相关分析中已实现了对相关字段而不是广泛使用的T字段的统计推断,以获得更准确的结果。给出了一个具有体内数据的示例,证明了BPM方法作为多模式图像分析工具的潜力。

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