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Validity and Power in Hemodynamic Response Modeling: A Comparison Study and a New Approach

机译:血流动力学反应模型的有效性和功效:比较研究和新方法

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摘要

One of the advantages of event-related functional MRI (fMRI) is that it permits estimation of the shape of the hemodynamic response function (HRF) elicited by cognitive events. Although studies to date have focused almost exclusively on the magnitude of evoked HRFs across different tasks, there is growing interest in testing other statistics, such as the time-to-peak and duration of activation as well. Although there are many ways to estimate such parameters, we suggest three criteria for optimal estimation: 1) the relationship between parameter estimates and neural activity must be as transparent as possible; 2) parameter estimates should be independent of one another, so that true differences among conditions in one parameter (e.g., hemodynamic response delay) are not confused for apparent differences in other parameters (e.g., magnitude); and 3) statistical power should be maximized. In this work, we introduce a new modeling technique, based on the superposition of three inverse logit functions (IL), designed to achieve these criteria. In simulations based on real fMRI data, we compare the IL model with several other popular methods, including smooth finite impulse response (FIR) models, the canonical HRF with derivatives, nonlinear fits using a canonical HRF, and a standard canonical model. The IL model achieves the best overall balance between parameter interpretability and power. The FIR model was the next-best choice, with gains in power at some cost to parameter independence. We provide software implementing the IL model.
机译:事件相关功能MRI(fMRI)的优点之一是,它可以估计认知事件引起的血液动力学响应功能(HRF)的形状。尽管迄今为止的研究几乎只针对不同任务中诱发的HRF的大小,但人们对测试其他统计数据(例如达到峰值时间和激活持续时间)的兴趣日益浓厚。尽管有很多方法可以估算这些参数,但我们建议了三个最佳估算标准:1)参数估算与神经活动之间的关系必须尽可能透明。 2)参数估计值应彼此独立,以使一个参数中条件之间的真实差异(例如血液动力学响应延迟)不会与其他参数中的明显差异(例如幅度)混淆; 3)统计能力应最大化。在这项工作中,我们介绍了一种基于三个逆对数函数(IL)的叠加的新建模技术,旨在实现这些标准。在基于真实fMRI数据的模拟中,我们将IL模型与其他几种流行的方法进行了比较,包括平滑有限冲激响应(FIR)模型,具有导数的规范HRF,使用规范HRF的非线性拟合以及标准规范模型。 IL模型在参数可解释性和功效之间实现了最佳的整体平衡。 FIR模型是次佳选择,功率获得时会牺牲一些参数独立性。我们提供实现IL模型的软件。

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