Studholme C, Constable R T, Duncan J S
Department of Diagnostic Radiology, Yale University New Haven, CT 06520-8042, USA.
IEEE Trans Med Imaging. 2000 Nov;19(11):1115-27. doi: 10.1109/42.896788.
Mapping of functional magnetic resonance imaging (fMRI) to conventional anatomical MRI is a valuable step in the interpretation of fMRI activations. One of the main limits on the accuracy of this alignment arises from differences in the geometric distortion induced by magnetic field inhomogeneity. This paper describes an approach to the registration of echo planar image (EPI) data to conventional anatomical images which takes into account this difference in geometric distortion. We make use of an additional spin echo EPI image and use the known signal conservation in spin echo distortion to derive a specialized multimodality nonrigid registration algorithm. We also examine a plausible modification using log-intensity evaluation of the criterion to provide increased sensitivity in areas of low EPI signal. A phantom-based imaging experiment is used to evaluate the behavior of the different criteria, comparing nonrigid displacement estimates to those provided by a imagnetic field mapping acquisition. The algorithm is then applied to a range of nine brain imaging studies illustrating global and local improvement in the anatomical alignment and localization of fMRI activations.
将功能磁共振成像(fMRI)映射到传统解剖学MRI是解释fMRI激活的重要一步。这种对齐准确性的主要限制之一源于磁场不均匀性引起的几何畸变差异。本文描述了一种将回波平面图像(EPI)数据配准到传统解剖图像的方法,该方法考虑了这种几何畸变差异。我们利用额外的自旋回波EPI图像,并利用自旋回波畸变中已知的信号守恒来推导一种专门的多模态非刚性配准算法。我们还研究了一种合理的修改方法,即使用准则的对数强度评估,以提高在低EPI信号区域的灵敏度。基于体模的成像实验用于评估不同准则的性能,将非刚性位移估计与通过磁场映射采集提供的估计进行比较。然后将该算法应用于一系列九个脑成像研究,展示了fMRI激活在解剖对齐和定位方面的整体和局部改善。