DECOUPLED AUTOMATED ROTATIONAL AND TRANSLATIONAL REGISTRATION FOR FUNCTIONAL MRI TIME-SERIES DATA - THE DART REGISTRATION ALGORITHM

Citation
Lc. Maas et al., DECOUPLED AUTOMATED ROTATIONAL AND TRANSLATIONAL REGISTRATION FOR FUNCTIONAL MRI TIME-SERIES DATA - THE DART REGISTRATION ALGORITHM, Magnetic resonance in medicine, 37(1), 1997, pp. 131-139
Citations number
17
Categorie Soggetti
Radiology,Nuclear Medicine & Medical Imaging
ISSN journal
07403194
Volume
37
Issue
1
Year of publication
1997
Pages
131 - 139
Database
ISI
SICI code
0740-3194(1997)37:1<131:DARATR>2.0.ZU;2-#
Abstract
A rapid, in-plane image registration algorithm that accurately estimat es and corrects for rotational and translational motion is described, This automated, one-pass method achieves its computational efficiency by decoupling the estimation of rotation and translation, allowing the application of rapid crosscorrelation and cross-spectrum techniques f or the determination of displacement parameters, k-space regridding an d modulation techniques are used for image correction as alternatives to linear interpolation, The performance of this method was analyzed w ith simulations and echo-planar image data from both phantoms and huma n subjects, The processing time for image registration on a Hewlett-Pa ckard 735/125 is 7.5 s for a 128 x 128 pixel image and 1.7 s for a 64 x 64 pixel image, Imaging phantom data demonstrate the accuracy of the method (mean rotational error, -0.09 degrees; standard deviation = 0. 17 degrees; range, -0.44 degrees to +0.31 degrees; mean translational error = -0.035 pixels; standard deviation = 0.054 pixels; range, -0.16 to +0.06 pixels). Registered human functional imaging data demonstrat e a significant reduction in motion artifacts such as linear trends in pixel time series and activation artifacts due to stimulus-correlated motion, The advantages of this technique are its noniterative one-pas s nature, the reduction in image degradation as compared to previous m ethods, and the speed of computation.