DocumentCode :
655367
Title :
Exploitation of Regression Line Potentiality to Track the Object through Color Optical Flow
Author :
Sidram, M.H. ; Bhajantri, Nagappa U.
Author_Institution :
Sri Jayachamarajendra Coll. of Eng., Mysore, India
fYear :
2013
fDate :
29-31 Aug. 2013
Firstpage :
181
Lastpage :
185
Abstract :
Normally gray images are less potential with the optical flow, especially to emulate relevant information. Since very long time the color optical flow strategy had been ignored. In this work, we are proposing a strategy which attempts to separate out the optical flow for each channels such as R, G and B through Horn-Schunk with Barren, Fleet and Beuchemin (BFB) kernel. Subsequently, obtained upshots are overlaid to get the rich information of the motion to detach the moving objects. Consequently the histograms of the moving objectss are employed to create the regression lines and extract product-moment correlation of each moving object. This coefficient utilized to match between the template and the candidate templates. Hence the template is updated with the best match. Further the bounding box is enclosed over the object based on spatial information of updated template.
Keywords :
image colour analysis; image sequences; object tracking; regression analysis; bounding box; color optical flow strategy; gray images; object tracking; product-moment correlation; regression line; regression lines; spatial information; Adaptive optics; Biomedical optical imaging; Computer vision; Equations; Image color analysis; Image motion analysis; Optical imaging; BFB; Color Optical Flow; Horn-Schunk; Regression lines; object tracking;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Advances in Computing and Communications (ICACC), 2013 Third International Conference on
Conference_Location :
Cochin
Type :
conf
DOI :
10.1109/ICACC.2013.43
Filename :
6686366
Link To Document :
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