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Optimizing the performance of local canonical correlation analysis in fMRI using spatial constraints

机译:利用空间约束优化功能磁共振成像中局部经典相关分析的性能

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摘要

The benefits of locally adaptive statistical methods for fMRI research have been shown in recent years, as these methods are more proficient in detecting brain activations in a noisy environment. One such method is local canonical correlation analysis (CCA), which investigates a group of neighboring voxels instead of looking at the single voxel time course. The value of a suitable test statistic is used as a measure of activation. It is customary to assign the value to the center voxel for convenience. The method without constraints is prone to artifacts, especially in a region of localized strong activation. To compensate for these deficiencies, the impact of different spatial constraints in CCA on sensitivity and specificity are investigated. The ability of constrained CCA (cCCA) to detect activation patterns in an episodic memory task has been studied. This research shows how any arbitrary contrast of interest can be analyzed by cCCA and how accurate P-values optimized for the contrast of interest can be computed using nonparametric methods. Results indicate an increase of up to 20% in detecting activation patterns for some of the advanced cCCA methods, as measured by ROC curves derived from simulated and real fMRI data.
机译:近年来已经显示了局部自适应统计方法在功能磁共振成像研究中的优势,因为这些方法在检测嘈杂环境中的大脑激活方面更为熟练。一种这样的方法是局部规范相关分析(CCA),它研究一组相邻的体素而不是查看单个体素的时间过程。适当的测试统计量的值用作激活的量度。为了方便起见,通常将值分配给中心体素。没有约束的方法容易出现伪像,特别是在局部强激活区域。为了弥补这些不足,研究了CCA中不同空间限制对敏感性和特异性的影响。研究了受限CCA(cCCA)检测情节记忆任务中激活模式的能力。这项研究表明,如何通过cCCA分析任何感兴趣的任意对比度,以及如何使用非参数方法计算针对感兴趣的对比度优化的准确P值。结果表明,对于某些先进的cCCA方法,通过从模拟和真实fMRI数据得出的ROC曲线进行测量,检测激活模式最多可增加20%。

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