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İnsan hareketlerinin tanınması için çizgi tabanlı bir poz temsili

2011
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Advisor: Yrd. Doç. Dr. Pınar Duygulu

Abstract (EN)

In this thesis, we utilize a line based pose representation to recognize human actions in videos. We represent the pose in each frame by employing a collection of line-pairs, so that limb and joint movements are better described and the geometrical relationships among the lines forming the human figure is captured. We contribute to the literature by proposing a new method that matches line-pairs of two poses to compute the similarity between them. Moreover, to encapsulate the global motion information of a pose sequence, we introduce line-flow histograms, which are extracted by matching line segments in consecutive frames. Experimental results on Weizmann and KTH datasets, emphasize the power of our pose representation; and show the effectiveness of using pose ordering and line-flow histograms together in grasping the nature of an action and distinguishing one from the others. Finally, we demonstrate the applicability of our approach to multi-camera systems on the IXMAS dataset.

Author

Dr. Sermetcan Baysal

How to Cite

Sermetcan Baysal (Master Thesis). İnsan hareketlerinin tanınması için çizgi tabanlı bir poz temsili, 2011, Bilkent University.

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