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Object tracking based on incremental Bi-2DPCA learning with sparse structure
2015
Applied Optics
Received Month X, XXXX; revised Month X, XXXX; accepted Month X, XXXX; posted Month X, XXXX (Doc. ID XXXXX); published Month X, XXXX In this paper, we propose a novel object tracking method that can work well in challenging scenarios such as appearance changes, motion blurs, and especially partial occlusions and noise. Our method applies bilateral twodimensional principal component analysis (Bi-2DPCA) for efficient object modeling and real-time computation requirement. An incremental Bi-2DPCA
doi:10.1364/ao.54.002897
pmid:25967206
fatcat:nlf7xs4hf5bhbksqszzn3anccm