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Global signal regression strengthens association between resting-state functional connectivity and behavior

机译:全局信号回归加强休息状态功能连接和行为之间的关联

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Global signal regression (GSR) is one of the most debated preprocessing strategies for resting-state functional MRI. GSR effectively removes global artifacts driven by motion and respiration, but also discards globally distributed neural information and introduces negative correlations between certain brain regions. The vast majority of previous studies have focused on the effectiveness of GSR in removing imaging artifacts, as well as its potential biases. Given the growing interest in functional connectivity fingerprinting, here we considered the utilitarian question of whether GSR strengthens or weakens associations between resting-state functional connectivity (RSFC) and multiple behavioral measures across cognition, personality and emotion.
机译:全局信号回归(GSR)是休息状态函数MRI最大争议的预处理策略之一。 GSR有效地去除由运动和呼吸驱动的全球伪像,而且还丢弃全球分布的神经信息,并在某些脑区之间引入负相关。 以前的大多数研究都集中在GSR在去除成像伪影中的有效性,以及其潜在的偏差。 鉴于对功能连接指纹识别的兴趣越来越令人兴趣,在这里我们考虑了GSR在休息,人格和情感上的多种行为措施和削弱了休息区功能连接(RSFC)之间的关联问题的功利主义问题。

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