DocumentCode :
1762174
Title :
An Efficient DCT-Based Image Compression System Based on Laplacian Transparent Composite Model
Author :
Chang Sun ; En-Hui Yang
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Waterloo, Waterloo, ON, Canada
Volume :
24
Issue :
3
fYear :
2015
fDate :
42064
Firstpage :
886
Lastpage :
900
Abstract :
Recently, a new probability model dubbed the Laplacian transparent composite model (LPTCM) was developed for DCT coefficients, which could identify outlier coefficients in addition to providing superior modeling accuracy. In this paper, we aim at exploring its applications to image compression. To this end, we propose an efficient nonpredictive image compression system, where quantization (including both hard-decision quantization (HDQ) and soft-decision quantization (SDQ)) and entropy coding are completely redesigned based on the LPTCM. When tested over standard test images, the proposed system achieves overall coding results that are among the best and similar to those of H.264 or HEVC intra (predictive) coding, in terms of rate versus visual quality. On the other hand, in terms of rate versus objective quality, it significantly outperforms baseline JPEG by more than 4.3 dB in PSNR on average, with a moderate increase on complexity, and ECEB, the state-of-the-art nonpredictive image coding, by 0.75 dB when SDQ is OFF (i.e., HDQ case), with the same level of computational complexity, and by 1 dB when SDQ is ON, at the cost of slight increase in complexity. In comparison with H.264 intracoding, our system provides an overall 0.4-dB gain or so, with dramatically reduced computational complexity; in comparison with HEVC intracoding, it offers comparable coding performance in the high-rate region or for complicated images, but with only less than 5% of the HEVC intracoding complexity. In addition, our proposed system also offers multiresolution capability, which, together with its comparatively high coding efficiency and low complexity, makes it a good alternative for real-time image processing applications.
Keywords :
computational complexity; data compression; entropy codes; image coding; DCT coefficients; DCT-based image compression system; HDQ; HEVC intracoding complexity; JPEG; LPTCM; Laplacian transparent composite model; SDQ; computational complexity; entropy coding; hard decision quantization; nonpredictive image coding; nonpredictive image compression system; outlier coefficients; probability model; real-time image processing applications; soft decision quantization; Context; Discrete cosine transforms; Encoding; Image coding; Indexes; Laplace equations; Quantization (signal); Image coding; entropy coding; outlier; quantization; transparent composite model (TCM);
fLanguage :
English
Journal_Title :
Image Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1057-7149
Type :
jour
DOI :
10.1109/TIP.2014.2383324
Filename :
6990541
Link To Document :
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