Welcome to the new version of CaltechAUTHORS. Login is currently restricted to library staff. If you notice any issues, please email coda@library.caltech.edu
Published March 2009 | Accepted Version
Journal Article Open

High-field diffusion MR histology: Image-based correction of eddy-current ghosts in diffusion-weighted rapid acquisition with relaxation enhancement (DW-RARE)

Abstract

High-resolution, diffusion-weighted (DW) MR microscopy is gaining increasing acceptance as a nondestructive histological tool for the study of fixed tissue samples. Spin-echo sequences are popular for high-field diffusion imaging due to their high tolerance to B_0 field inhomogeneities. Volumetric DW rapid acquisition with relaxation enhancement (DW-RARE) currently offers the best tradeoff between imaging efficiency and image quality, but is relatively sensitive to residual eddy-current effects on the echo train phase, resulting in encoding direction-dependent ghosting in the DW images. We introduce two efficient, image-based phase corrections for ghost artifact reduction in DW-RARE of fixed tissue samples, neither of which require navigator echo acquisition. Both methods rely on the phase difference in k-space between the unweighted reference image and a given DW image and assume a constant, per-echo phase error arising from residual eddy-current effects in the absence of sample motion. Significant qualitative and quantitative ghost artifact reductions are demonstrated for individual DW and calculated diffusion tensor images.

Additional Information

© 2008 Wiley-Liss, Inc. Received: 9 April 2008; Revised: 11 September 2008; Accepted: 8 October 2008. Published Online: 18 Dec 2008. Grant sponsor: National Institutes of Health; Grant numbers: 5 R01 MH64729-05; 5 R01 MH075870-02; Grant sponsor: National Science Foundation; Grant number: DBI 0552396.

Attached Files

Accepted Version - nihms658357.pdf

Files

nihms658357.pdf
Files (858.0 kB)
Name Size Download all
md5:294ba7536d8b3d71215845fce7135091
858.0 kB Preview Download

Additional details

Created:
August 21, 2023
Modified:
October 19, 2023