课题基金 / 基金详情

Elimination of Head Movement Artifact in fMRI

Elimination of Head Movement Artifact in fMRI
消除 fMRI 中的头部运动伪影
批准号:
7102690
负责人:
DOUGLAS C NOLL
金额:
$35.27万
依托单位国家:
美国
项目类别:
财政年份:
2003
资助国家:
美国
项目状态:
已结题
起止时间:
2003-09-01 至 2008-07-31

项目摘要

项目成果

DOUGLAS C NOLL的其他基金

相关文献

中文摘要
翻译
描述(由申请人提供): 虽然功能磁共振成像(FMRI)的后处理方法已经取得了很大进展,但在患者或儿科人群中的许多研究仍然受到头部运动伪影的限制。来自我们团队和其他人的数据表明,磁化率效应造成的图像失真与头部位置有关。因此,我们假设,采集和处理方法旨在减少磁化率引起的图像失真和信号空洞,并将提高重新对准运动校正方法的有效性。这项工作的长期目标是开发图像采集协议、重建方法和后处理方法,以提高fMRI中头部运动校正的有效性。我们的方法是首先全面了解采集参数对运动校正有效性的影响,最小化磁化率伪影的采集方法,以及图像重建中的磁化率校正。这将主要通过对头部运动的广泛模拟研究和使用计算机控制的运动体模的体模研究来进行。最有希望的方法将在人类功能磁共振研究中进行经验性评估。我们还将开发采集和重建方法,明确允许估计和校正运动引起的磁场变化和图像失真的相关变化。最后,我们将探索对齐后的残差进行建模和解释的方法。减少磁化率影响的方法可能会在靠近空气-组织界面的大脑区域显示出最大的运动校正改善。这些区域包括眼眶-额叶皮质、下部和内侧颞叶,以及额叶极-大脑区域,这些区域对执行和情绪处理非常重要,并与情感障碍、药物滥用和许多疾病有关。我们的综合方法--包括采集、重建和后处理方法--将允许几乎完全纠正大头运动,使fMRI成为研究痴呆症和其他精神疾病患者以及研究儿科人群的更有用的工具。
英文摘要
DESCRIPTION (provided by applicant): While great gains have been made in post-processing methods for functional magnetic resonance imaging (fMRI), many studies in patient or pediatric populations continue to be limited by head motion artifact. Data from our group and others suggest that image distortions from magnetic susceptibility effects are head position dependent. Consequently, we hypothesize that acquisition and processing methods designed to reduce susceptibility-induced image distortions and signal voids and will improve the effectiveness of realignment movement correction methods. The long-term goal of this work is to develop image acquisition protocols, reconstruction approaches and post-processing methods that will improve on the effectiveness of head movement correction in fMRI. Our approach will be to first develop a comprehensive understanding of the impact on the effectiveness of motion correction of acquisition parameters, acquisition methods for minimization of susceptibility artifact, and susceptibility corrections in image reconstruction. This will be carried out mainly through extensive simulation studies of head motion and phantom studies using a computer-controlled motion phantom. The most promising approaches will be evaluated empirically in human fMRI studies. We will also develop acquisition and reconstruction methods that will explicitly allow the estimation and correction of motion-induced changes in the magnetic fields and the associated changes in image distortions. Finally, we will explore methods to model and account for residual error after image realignment. Methods that reduce magnetic susceptibility effects may show the largest improvement in motion correction in regions of the brain in close proximity to an air-tissue interfaces. These areas include the orbito-frontal cortex, inferior and medial temporal lobes, and the frontal pole - brain areas that are important for executive and emotional processing and have been implicated in affective disorders, substance abuse and numerous conditions. Our comprehensive approach - including acquisition, reconstruction and post-processing methods - will allow for nearly complete correction of large head motions, making fMRI a substantially more useful tool for studying patients with dementias and other psychiatric disorders and for studying pediatric populations.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
Core G: Neuroimaging Core
Core G: Neuroimaging Core
Core G: Neuroimaging Core
High SNR Functional Brain Imaging using Oscillating Steady State MRI