DocumentCode :
1298766
Title :
On Complexity Modeling of H.264/AVC Video Decoding and Its Application for Energy Efficient Decoding
Author :
Ma, Zhan ; Hu, Hao ; Wang, Yao
Author_Institution :
Polytech. Inst., New York Univ., New York, NY, USA
Volume :
13
Issue :
6
fYear :
2011
Firstpage :
1240
Lastpage :
1255
Abstract :
This paper proposes a new complexity model for H.264/AVC video decoding. The model is derived by decomposing the entire decoder into several decoding modules (DM), and identifying the fundamental operation unit (termed complexity unit or CU) in each DM. The complexity of each DM is modeled by the product of the average complexity of one CU and the number of CUs required. The model is shown to be highly accurate for software video decoding both on Intel Pentium mobile 1.6-GHz and ARM Cortex A8 600-MHz processors, over a variety of video contents at different spatial and temporal resolutions and bit rates. We further show how to use this model to predict the required clock frequency and hence perform dynamic voltage and frequency scaling (DVFS) for energy efficient video decoding. We evaluate achievable power savings on both the Intel and ARM platforms, by using analytical power models for these two platforms as well as real experiments with the ARM-based TI OMAP35x EVM board. Our study shows that for the Intel platform where the dynamic power dominates, a power saving factor of 3.7 is possible. For the ARM processor where the static leakage power is not negligible, a saving factor of 2.22 is still achievable.
Keywords :
decoding; image resolution; microprocessor chips; video coding; ARM Cortex A8 processor; ARM-based TI OMAP35x EVM board; H.264/AVC video decoding; Intel Pentium mobile processor; Intel platform; clock frequency; complexity modeling; decoding modules; dynamic voltage and frequency scaling; energy efficient decoding; software video decoding; spatial resolution; static leakage power; temporal resolution; video content; Complexity theory; Decoding; Dynamic voltage scaling; Energy efficiency; Handheld computers; Streaming media; Complexity modeling and prediction; H.264/AVC video decoding; dynamic voltage and frequency scaling (DVFS);
fLanguage :
English
Journal_Title :
Multimedia, IEEE Transactions on
Publisher :
ieee
ISSN :
1520-9210
Type :
jour
DOI :
10.1109/TMM.2011.2165056
Filename :
5985536
Link To Document :
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