DocumentCode
893524
Title
Modeling Quantization of Affine Motion Vector Coefficients
Author
Kordasiewicz, Roman C. ; Gallant, Michael D. ; Shirani, Shahram
Author_Institution
Dept. of Electr. & Comput. Eng., McMaster Univ., Hamilton, Ont.
Volume
17
Issue
1
fYear
2007
Firstpage
86
Lastpage
97
Abstract
Affine motion compensated prediction (AMCP) is an advanced tool which may be incorporated into future video compression standards. There are numerous coders already using AMCP . However the increased number of motion vector components is a disadvantage and quantizing these components can have significant consequences on the difference macro blocks (DMBs). This paper examines the quantization of affine motion vector (AMV) coefficients, by deriving a quadratic relationship between DMB energy and AMV quantization step size. Mathematical derivations and simulations are provided, including two literature comparisons demonstrating the benefits of this work. In the first comparison, the quantization of orthogonalized AMVs in is compared with quantization guided by the novel quadratic model. In the second comparison, Nokia´s MVC coder is modified to use the quadratic model to generate quantization step sizes for various granularities; sequence, frame, and quarter-frame, demonstrating up to 8.7% bit rate reductions. Model driven AMV quantization step size choices are shown to be very close to and even outperform limited exhaustive search AMV quantization step size choices, at a quarter of the computational cost
Keywords
data compression; motion compensation; video coding; affine motion compensated prediction; affine motion vector coefficients; bit rate reductions; difference macro blocks; modeling quantization; video compression standards; Bit rate; Computational complexity; Computational efficiency; Digital multimedia broadcasting; Motion compensation; Motion estimation; Polynomials; Quantization; Shearing; Video compression; Affine motion vectors (AMVs); difference macroblock (DMB) energy; motion compensation; motion estimation; polynomial motion vectors; quadratic motion vectors; quantization; rate allocation; rate optimization; video compression;
fLanguage
English
Journal_Title
Circuits and Systems for Video Technology, IEEE Transactions on
Publisher
ieee
ISSN
1051-8215
Type
jour
DOI
10.1109/TCSVT.2006.887080
Filename
4039372
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