DocumentCode
1493179
Title
Computation of Fluid and Particle Motion From a Time-Sequenced Image Pair: A Global Outlier Identification Approach
Author
Ray, Nilanjan
Author_Institution
Dept. of Comput. Sci., Univ. of Alberta, Edmonton, AB, Canada
Volume
20
Issue
10
fYear
2011
Firstpage
2925
Lastpage
2936
Abstract
Fluid motion estimation from time-sequenced images is a significant image analysis task. Its application is widespread in experimental fluidics research and many related areas like biomedical engineering and atmospheric sciences. In this paper, we present a novel flow computation framework to estimate the flow velocity vectors from two consecutive image frames. In an energy minimization-based flow computation, we propose a novel data fidelity term, which: 1) can accommodate various measures, such as cross-correlation or sum of absolute or squared differences of pixel intensities between image patches; 2) has a global mechanism to control the adverse effect of outliers arising out of motion discontinuities, proximity of image borders; and 3) can go hand-in-hand with various spatial smoothness terms. Further, the proposed data term and related regularization schemes are both applicable to dense and sparse flow vector estimations. We validate these claims by numerical experiments on benchmark flow data sets.
Keywords
computational fluid dynamics; flow visualisation; identification technology; image sequences; minimisation; motion estimation; two-phase flow; atmospheric science; biomedical engineering; energy minimization-based flow computation; flow computation framework; flow velocity vector estimation method; fluid motion estimation method; global mechanism; global outlier identification approach; image analysis; regularization scheme; sparse flow vector estimation; time-sequenced image; Computer vision; Cost function; Image motion analysis; Nickel; Optical filters; Optical imaging; Pixel; Motion estimation; optical flow; optimization; outliers; particle image velocimetry; Algorithms; Cell Movement; Computer Simulation; Endothelial Cells; Humans; Image Processing, Computer-Assisted; Microscopy; Models, Biological; Monocytes; Motion; Movement; Physicochemical Phenomena; Rheology;
fLanguage
English
Journal_Title
Image Processing, IEEE Transactions on
Publisher
ieee
ISSN
1057-7149
Type
jour
DOI
10.1109/TIP.2011.2142005
Filename
5749285
Link To Document