Three-dimensional strain-rate imaging.

Strain-rate imaging uses large velocity encoding gradients to obtain measurements of velocity that are extremely insensitive to the effects of random noise. The spatial differential of velocity yields the velocity gradient from which the strain-rate and twist-rate tensors can be determined. These te...

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Main Authors: Robson, M, Constable, RT
Format: Journal article
Language:English
Published: 1996
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author Robson, M
Constable, RT
author_facet Robson, M
Constable, RT
author_sort Robson, M
collection OXFORD
description Strain-rate imaging uses large velocity encoding gradients to obtain measurements of velocity that are extremely insensitive to the effects of random noise. The spatial differential of velocity yields the velocity gradient from which the strain-rate and twist-rate tensors can be determined. These tensors represent the distortion of the material and are of interest in the analysis of the dynamic behavior of living tissue (e.g., that of the myocardium). This work presents a new technique that uses the magnitude of the signal in the velocity encoded data to measure through-plane velocity variations at the resolution of the voxel size. The magnitude of the MR signal contains information about the range of phases present within a voxel. When the phase is dependent on the velocity (as in phase velocity imaging), the magnitude contains information about the range of velocities within a voxel. The method presented in this work uses unbalanced slice-refocusing gradients to sample the magnitude variation introduced by the interaction of velocity encoding gradients with spatially dependent velocities. The previously developed in-plane velocity gradient methods can be easily integrated with this new through-plane measurement to characterize the deformation of the myocardium in three spatial dimensions with high accuracy. The applicability of these methods is demonstrated theoretically, in phantoms and in vivo.
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spelling oxford-uuid:b8b11604-ce94-4742-b0f5-6fb70c1cad3f2022-03-27T04:57:29ZThree-dimensional strain-rate imaging.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:b8b11604-ce94-4742-b0f5-6fb70c1cad3fEnglishSymplectic Elements at Oxford1996Robson, MConstable, RTStrain-rate imaging uses large velocity encoding gradients to obtain measurements of velocity that are extremely insensitive to the effects of random noise. The spatial differential of velocity yields the velocity gradient from which the strain-rate and twist-rate tensors can be determined. These tensors represent the distortion of the material and are of interest in the analysis of the dynamic behavior of living tissue (e.g., that of the myocardium). This work presents a new technique that uses the magnitude of the signal in the velocity encoded data to measure through-plane velocity variations at the resolution of the voxel size. The magnitude of the MR signal contains information about the range of phases present within a voxel. When the phase is dependent on the velocity (as in phase velocity imaging), the magnitude contains information about the range of velocities within a voxel. The method presented in this work uses unbalanced slice-refocusing gradients to sample the magnitude variation introduced by the interaction of velocity encoding gradients with spatially dependent velocities. The previously developed in-plane velocity gradient methods can be easily integrated with this new through-plane measurement to characterize the deformation of the myocardium in three spatial dimensions with high accuracy. The applicability of these methods is demonstrated theoretically, in phantoms and in vivo.
spellingShingle Robson, M
Constable, RT
Three-dimensional strain-rate imaging.
title Three-dimensional strain-rate imaging.
title_full Three-dimensional strain-rate imaging.
title_fullStr Three-dimensional strain-rate imaging.
title_full_unstemmed Three-dimensional strain-rate imaging.
title_short Three-dimensional strain-rate imaging.
title_sort three dimensional strain rate imaging
work_keys_str_mv AT robsonm threedimensionalstrainrateimaging
AT constablert threedimensionalstrainrateimaging