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Research ArticleInterventional
Open Access

Quantification of Blood Velocity with 4D Digital Subtraction Angiography Using the Shifted Least-Squares Method

Y. Wu, G. Shaughnessy, C.A. Hoffman, E.L. Oberstar, S. Schafer, T. Schubert, K.L. Ruedinger, B.J. Davis, C.A. Mistretta, C.M. Strother and M.A. Speidel
American Journal of Neuroradiology October 2018, 39 (10) 1871-1877; DOI: https://doi.org/10.3174/ajnr.A5793
Y. Wu
aFrom the Departments of Medical Physics (Y.W., G.S., C.A.H., C.A.M., M.A.S.)
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G. Shaughnessy
aFrom the Departments of Medical Physics (Y.W., G.S., C.A.H., C.A.M., M.A.S.)
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C.A. Hoffman
aFrom the Departments of Medical Physics (Y.W., G.S., C.A.H., C.A.M., M.A.S.)
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E.L. Oberstar
bBiomedical Engineering (E.L.O., K.L.R., B.J.D.)
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S. Schafer
eSiemens Healthineers (S.S.), USA
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T. Schubert
cRadiology (C.A.M., C.M.S., T.S.)
fDepartment of Radiology and Nuclear Medicine (T.S.), Basel University Hospital, Basel, Switzerland.
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K.L. Ruedinger
bBiomedical Engineering (E.L.O., K.L.R., B.J.D.)
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B.J. Davis
bBiomedical Engineering (E.L.O., K.L.R., B.J.D.)
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C.A. Mistretta
aFrom the Departments of Medical Physics (Y.W., G.S., C.A.H., C.A.M., M.A.S.)
cRadiology (C.A.M., C.M.S., T.S.)
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C.M. Strother
cRadiology (C.A.M., C.M.S., T.S.)
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M.A. Speidel
aFrom the Departments of Medical Physics (Y.W., G.S., C.A.H., C.A.M., M.A.S.)
dMedicine (M.A.S.), University of Wisconsin, Madison, Wisconsin
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Abstract

BACKGROUND AND PURPOSE: 4D-DSA provides time-resolved 3D-DSA volumes with high temporal and spatial resolutions. The purpose of this study is to investigate a shifted least squares method to estimate the blood velocity from the 4D DSA images. Quantitative validation was performed using a flow phantom with an ultrasonic flow probe as ground truth. Quantification of blood velocity in human internal carotid arteries was compared with measurements generated from 3D phase-contrast MR imaging.

MATERIALS AND METHODS: The centerlines of selected vascular segments and the time concentration curves of each voxel along the centerlines were determined from the 4D-DSA dataset. The temporal shift required to achieve a minimum difference between any point and other points along the centerline of a segment was calculated. The temporal shift as a function of centerline point position was fit to a straight line to generate the velocity. The proposed shifted least-squares method was first validated using a flow phantom study. Blood velocities were also estimated in the 14 ICAs of human subjects who had both 4D-DSA and phase-contrast MR imaging studies. Linear regression and correlation analysis were performed on both the phantom study and clinical study, respectively.

RESULTS: Mean velocities of the flow phantom calculated from 4D-DSA matched very well with ultrasonic flow probe measurements with 11% relative root mean square error. Mean blood velocities of ICAs calculated from 4D-DSA correlated well with phase-contrast MR imaging measurements with Pearson correlation coefficient r = 0.835.

CONCLUSIONS: The availability of 4D-DSA provides the opportunity to use the shifted least-squares method to estimate velocity in vessels within a 3D volume.

ABBREVIATIONS:

PC
phase-contrast
SBR
sideband ratio
TCC
time concentration curve
VIPR
vastly undersampled isotropic projection reconstruction
  • © 2018 by American Journal of Neuroradiology

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American Journal of Neuroradiology: 39 (10)
American Journal of Neuroradiology
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1 Oct 2018
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Cite this article
Y. Wu, G. Shaughnessy, C.A. Hoffman, E.L. Oberstar, S. Schafer, T. Schubert, K.L. Ruedinger, B.J. Davis, C.A. Mistretta, C.M. Strother, M.A. Speidel
Quantification of Blood Velocity with 4D Digital Subtraction Angiography Using the Shifted Least-Squares Method
American Journal of Neuroradiology Oct 2018, 39 (10) 1871-1877; DOI: 10.3174/ajnr.A5793

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Quantification of Blood Velocity with 4D Digital Subtraction Angiography Using the Shifted Least-Squares Method
Y. Wu, G. Shaughnessy, C.A. Hoffman, E.L. Oberstar, S. Schafer, T. Schubert, K.L. Ruedinger, B.J. Davis, C.A. Mistretta, C.M. Strother, M.A. Speidel
American Journal of Neuroradiology Oct 2018, 39 (10) 1871-1877; DOI: 10.3174/ajnr.A5793
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