DocumentCode
1121127
Title
A Novel 4-D Perceptual Quantization Modeling for H.264 Bit-Rate Control
Author
Huang, Chung-Ming ; Lin, Chung-Wei
Author_Institution
Nat. Cheng Kung Univ., Tainan
Volume
9
Issue
6
fYear
2007
Firstpage
1113
Lastpage
1124
Abstract
Bit-rate control plays a major role In video coding and multimedia streaming. A well-designed bit-rate control mechanism can achieve line visual qualities and avoid network congestion over a time-varying channel. This paper proposes an H.264 bit-rate control using a 4D perceptual quantization modeling (PQrc), including two major encoding modules: the perceptual frame-level bit-allocation using a 1D temporal pattern and the macroblock-level quantizer decision using a 3D rate pattern. The temporal pattern is used to predict frame complexity and determine proper budget bits further. The rate pattern is depicted as a bit-complexity-quantization (B.C.Q.) model, in which a tangent slope of a B.C.Q. curve is a piece of unique information to find a proper quantizer. For newly generated video clips, the B.C.Q. model is updated continuously using a weighted least-square estimation. In comparison with the latest H.264 JM10.2, our experiment results show that the proposed PQrc can: 1) keep stable buffer fullness and 2) improve the SNR quality and control accuracy effectively.
Keywords
least squares approximations; mobile radio; multimedia communication; time-varying channels; vector quantisation; video coding; 1D temporal pattern; 3D rate pattern; 4D perceptual quantization modeling; H.264 bit-rate control; bit-complexity-quantization model; encoding; frame complexity prediction; macroblock-level quantizer decision; multimedia streaming; perceptual frame-level bit-allocation; time-varying channel; video clips; video coding; weighted least-square estimation; 4-D perceptual quantization modeling; H264; bit-rate control; just-noticeable-difference PSNR; weighted least-square estimation;
fLanguage
English
Journal_Title
Multimedia, IEEE Transactions on
Publisher
ieee
ISSN
1520-9210
Type
jour
DOI
10.1109/TMM.2007.902840
Filename
4303028
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