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ICAPR
2009
Springer

Online Improved Eigen Tracking

13 years 2 months ago
Online Improved Eigen Tracking
We present a novel predictive statistical framework to improve the performance of an Eigen Tracker which uses fast and efficient eigen space updates to learn new views of the object being tracked on the fly using candid co-variance free incremental PCA. The proposed system detects and tracks an object in the scene by learning the appearance model of the object online motivated by non-traditional uniform norm. It speeds up the tracker many fold by avoiding nonlinear optimization generally used in the literature.
Subarna Tripathi, Santanu Chaudhury, Sumantra Dutt
Added 18 Feb 2011
Updated 18 Feb 2011
Type Journal
Year 2009
Where ICAPR
Authors Subarna Tripathi, Santanu Chaudhury, Sumantra Dutta Roy
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