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Statistical approaches to functional neuroimaging data.

机译:功能性神经影像数据的统计方法。

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摘要

The field of statistics makes valuable contributions to functional neuroimaging research by establishing procedures for the design and conduct of neuroimaging experiments and providing tools for objectively quantifying and measuring the strength of scientific evidence provided by the data. Two common functional neuroimaging research objectives include detecting brain regions that reveal task-related alterations in measured brain activity (activations) and identifying highly correlated brain regions that exhibit similar patterns of activity over time (functional connectivity). This article highlights various statistical procedures for analyzing data from activation studies and functional connectivity studies, focusing on functional magnetic resonance imaging (fMRI) and positron emission tomography (PET) data. Also discussed are emerging statistical methods for prediction using fMRI and PET data, which stand to increase the translational significance of functional neuroimaging data to clinical practice.
机译:统计领域通过建立神经影像实验的设计和进行程序,并提供客观地量化和测量数据提供的科学证据强度的工具,为功能性神经影像研究做出了宝贵的贡献。两种常见的功能性神经影像学研究目标包括:检测大脑区域,以揭示与测量的大脑活动(激活)相关的任务变化;以及识别高度相关的大脑区域,这些区域随时间推移表现出相似的活动模式(功能连接性)。本文重点介绍了用于分析激活研究和功能连接性研究数据的各种统计程序,重点是功能磁共振成像(fMRI)和正电子发射断层扫描(PET)数据。还讨论了使用fMRI和PET数据进行预测的新兴统计方法,这些方法有望增加功能神经影像数据对临床实践的转化意义。

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