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A Graphics Processing Unit Accelerated Motion Correction Algorithm and Modular System for Real-time fMRI

机译:用于实时功能磁共振成像的图形处理单元加速运动校正算法和模块化系统

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摘要

Real-time functional magnetic resonance imaging (rt-fMRI) has recently gained interest as a possible means to facilitate the learning of certain behaviors. However, rt-fMRI is limited by processing speed and available software, and continued development is needed for rt-fMRI to progress further and become feasible for clinical use. In this work, we present an open-source rt-fMRI system for biofeedback powered by a novel Graphics Processing Unit (GPU) accelerated motion correction strategy as part of the BioImage Suite project (). Our system contributes to the development of rt-fMRI by presenting a motion correction algorithm that provides an estimate of motion with essentially no processing delay as well as a modular rt-fMRI system design. Using empirical data from rt-fMRI scans, we assessed the quality of motion correction in this new system. The present algorithm performed comparably to standard (non real-time) offline methods and outperformed other real-time methods based on zero order interpolation of motion parameters. The modular approach to the rt-fMRI system allows the system to be flexible to the experiment and feedback design, a valuable feature for many applications. We illustrate the flexibility of the system by describing several of our ongoing studies. Our hope is that continuing development of open-source rt-fMRI algorithms and software will make this new technology more accessible and adaptable, and will thereby accelerate its application in the clinical and cognitive neurosciences.
机译:实时功能磁共振成像(rt-fMRI)最近作为一种促进学习某些行为的可能手段而受到关注。然而,rt-fMRI受处理速度和可用软件的限制,并且需要继续开发以使rt-fMRI进一步发展并在临床上变得可行。在这项工作中,我们提出了一种用于生物反馈的开源rt-fMRI系统,该系统由一种新型的图形处理单元(GPU)加速运动校正策略提供支持,是BioImage Suite项目()的一部分。我们的系统通过提出一种运动校正算法和模块化rt-fMRI系统设计,为运动rt-fMRI的发展做出了贡献,该算法可提供对运动的估计,而基本上没有处理延迟。使用来自rt-fMRI扫描的经验数据,我们评估了这个新系统中运动校正的质量。本算法与标准(非实时)离线方法可比地执行,并且基于运动参数的零阶插值优于其他实时方法。 rt-fMRI系统的模块化方法使系统可以灵活地进行实验和反馈设计,这对于许多应用程序来说都是宝贵的功能。我们通过描述一些正在进行的研究来说明系统的灵活性。我们希望,开源rt-fMRI算法和软件的持续开发将使这项新技术更易于访问和适应,从而加速其在临床和认知神经科学中的应用。

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