Title :
A scalar function formulation for optical flow: applications to X-ray imaging
Author_Institution :
Dept. of Diagnostic Radiol., Yale Univ., New Haven, CT, USA
Abstract :
The author presents results from a new formulation for determining velocities from a time-sequence of X-ray projection images of an incompressible fluid. Starting with the conservation of mass principle, and physics of X-ray projection, the author derives a motion constraint equation for projection imaging, a practical special case of which is shown to be the Horn and Schunck´s optical flow constraint. The formulation is particularly efficient, as the flow field is obtained from a 90 degrees rotation applied to the gradient of a scalar function. It is shown that if specific criteria are met, in addition to normal flow which is commonly recoverable, the tangential component of optical flow is also recoverable, without the need for smoothness. An algorithm is presented to illustrate this. Preliminary results from the optical flow formulation applied to synthetic images, as well as contrast-injected X-ray images of flowing fluid, in a cylindrical phantom are presented
Keywords :
diagnostic radiography; haemodynamics; image sequences; medical image processing; velocity measurement; Horn/Schunck´s optical flow constraint; X-ray projection images; algorithm; conservation of mass principle; contrast-injected X-ray images; cylindrical phantom; flow field; images time-sequence; incompressible fluid; medical X-ray imaging; medical diagnostic imaging; optical flow; scalar function formulation; synthetic images; tangential component; Fluid flow measurement; Image motion analysis; Image sequence analysis; Image sequences; Motion analysis; Optical filters; Optical pumping; Physics; Shape; X-ray imaging;
Conference_Titel :
Biomedical Image Analysis, 1994., Proceedings of the IEEE Workshop on
Conference_Location :
Seattle, WA
Print_ISBN :
0-8186-5802-9
DOI :
10.1109/BIA.1994.315858