DocumentCode :
2649132
Title :
Real-time Person Tracking in High-resolution Panoramic Video for Automated Broadcast Production
Author :
Kaiser, Rene ; Thaler, Marcus ; Kriechbaum, Andreas ; Fassold, Hannes ; Bailer, Werner ; Rosner, Jakub
Author_Institution :
Inst. for Inf. & Commun. Technol. (DIGITAL), Joanneum Res., Graz, Austria
fYear :
2011
fDate :
16-17 Nov. 2011
Firstpage :
21
Lastpage :
29
Abstract :
For enabling immersive user experiences for interactive TV services and automating camera view selection and framing, knowledge of the location of persons in a scene is essential. We describe an architecture for detecting and tracking persons in high-resolution panoramic video streams, obtained from the Omni Cam, a panoramic camera stitching video streams from 6 HD resolution tiles. We use a CUDA accelerated feature point tracker, a blob detector and a CUDA HOG person detector, which are used for region tracking in each of the tiles before fusing the results for the entire panorama. In this paper we focus on the application of the HOG person detector in real-time and the speedup of the feature point tracker by porting it to NVIDIA´s Fermi architecture. Evaluations indicate significant speedup for our feature point tracker implementation, enabling the entire process in a real-time system.
Keywords :
image resolution; interactive television; object detection; object tracking; parallel architectures; television production; video cameras; video streaming; CUDA HOG person detector; CUDA accelerated feature point tracker; HOG person detector; NVIDIA Fermi architecture; automated broadcast production; blob detector; high-resolution panoramic video stream; interactive TV services; panoramic camera stitching video streams; real-time person tracking; region tracking; Cameras; Computer architecture; Detectors; Graphics processing unit; High definition video; Real time systems; Tiles; CUDA; Fermi; Virtual Director; person tracking;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Visual Media Production (CVMP), 2011 Conference for
Conference_Location :
London
Print_ISBN :
978-1-4673-0117-6
Type :
conf
DOI :
10.1109/CVMP.2011.9
Filename :
6103272
Link To Document :
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