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首页> 外文期刊>Magnetic resonance imaging: An International journal of basic research and clinical applications >Image registration framework for large-scale longitudinal MRI data sets: strategy and validation
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Image registration framework for large-scale longitudinal MRI data sets: strategy and validation

机译:大规模纵向MRI数据集的图像配准框架:策略和验证

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Advanced magnetic resonance imaging (MRI) studies often require the transformation of large numbers of images into a common space. Calculating transformations that relate each image to every other and applying them to the images on demand are theoretically possible; however, these can be computationally prohibitive. Therefore, relating each image to only one other image, then linking those transforms together to relate any two images in the database, may be an efficient alternative. Evaluated were the feasibility and validity of image registration to bring intraindividual MR images into mutual correspondence for longitudinal analysis through the concatenation of precomputed transforms. A longitudinal data set of 10 multiple sclerosis patients with nine serial dual-echo spin-echo, 1.5-T MR] scans was used. Intrasubject registrations were performed stepwise between consecutive images and direct from each time point to the baseline. Consecutive transforms were concatenated and evaluated against direct registrations by comparing the resulting transformed images (using Pearson correlation coefficient). Confounding variables such as time between scans, brain atrophy, and change in lesion load were evaluated. We found the images resampled with the direct and the concatenated transforms to be highly correlated, and there was no significant difference between methods. Differences in brain parenchymal fraction (a measure of brain atrophy) showed significant inverse correlation with the correspondence of the resampled images. Results indicate that concatenating multiple transforms that link two images together produces near-identical results to that of direct registration; thus, this method is both useful and valid. (c) 2007 Elsevier Inc. All rights reserved.
机译:先进的磁共振成像(MRI)研究通常需要将大量图像转换为公共空间。从理论上讲,可以计算将每个图像彼此关联并将其应用于按需图像的转换;但是,这些在计算上可能是禁止的。因此,将每个图像仅与一个其他图像相关联,然后将这些转换链接在一起以使数据库中的任何两个图像相关联,可能是一种有效的选择。评价了图像配准的可行性和有效性,该图像配准通过预先计算的变换的串联将内在的MR图像相互对应以进行纵向分析。使用10例多发性硬化症患者的纵向数据集,进行9次连续双回波自旋回波,1.5-T MR]扫描。在连续图像之间逐步进行对象内配准,并直接从每个时间点到基线。通过比较生成的转换图像(使用Pearson相关系数),对连续转换进行级联并针对直接配准进行评估。评估了诸如扫描之间的时间,脑萎缩和病变负荷变化等混杂变量。我们发现使用直接和级联变换重新采样的图像高度相关,并且方法之间没有显着差异。脑实质分数(脑萎缩的一种度量)的差异与重采样图像的对应关系显示出显着的负相关。结果表明,将将两个图像链接在一起的多个变换的串联产生的结果与直接配准的结果几乎相同。因此,该方法既有用又有效。 (c)2007 Elsevier Inc.保留所有权利。

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