A multimodal lossless coding method for skeletons in videos
May 06, 2019 Β· Declared Dead Β· π 2019 IEEE International Conference on Multimedia & Expo Workshops (ICMEW)
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Authors
Mingzhou Liu, Xiaoyi He, Weiyao Lin, Xintong Han, Yanmin Zhu, Hongtao Lu, Hongkai Xiong
arXiv ID
1905.01790
Category
cs.MM: Multimedia
Citations
2
Venue
2019 IEEE International Conference on Multimedia & Expo Workshops (ICMEW)
Last Checked
3 months ago
Abstract
Nowadays, skeleton information in videos plays an important role in human-centric video analysis but effective coding such massive skeleton information has never been addressed in previous work. In this paper, we make the first attempt to solve this problem by proposing a multimodal skeleton coding tool containing three different coding schemes, namely, spatial differential-coding scheme, motionvector-based differential-coding scheme and inter prediction scheme, thus utilizing both spatial and temporal redundancy to losslessly compress skeleton data. More importantly, these schemes are switched properly for different types of skeletons in video frames, hence achieving further improvement of compression rate. Experimental results show that our approach leads to 74.4% and 54.7% size reduction on our surveillance sequences and overall test sequences respectively, which demonstrates the effectiveness of our skeleton coding tool.
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