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Lossless image compression based on integer Discrete Tchebichef Transform

delete2016-11-01
delete51
PRE
AI
B
Bin Xiao *
陆刚 封面图
陆刚 (Gang Lu)
Y
Yanhong Zhang
W
Weisheng Li
G
Guoyin Wang
DOI:10.1016/j.neucom.2016.06.050delete
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摘要

摘要

En 中文
Transform coding plays a very important role in image and video compression. Discrete Cosine Transform (DCT) is used as standard scheme (i.e. JPEG) in lossy image compression. Consequently, integer Discrete Cosine Transform (iDCT) is presented to achieve lossless compression for the compatibility of JPEG. Presently, with the investigation of new and well performed image transform techniques, there is an undeniable need for novel transform coding technologies to improve the compression rates and reduce computational complexity in the field of transform based lossless image compression. Discrete Tchebichef Transform (DTT) is a potentially unexploited orthogonal transform, and has shown a number of valuable properties like energy compaction and recursive computation. It has been preliminarily introduced in lossy image compression and shown the superiority in the compression rates. However, the DTT has not been investigated in lossless image compression. In this paper, we study DTT and matrix factorization theory firstly, and then factorize the N x N DTT matrix into N+1 single-row elementary reversible matrices (SERMs) with minimum rounding errors. On this base, we introduce a novel algorithm, named integer DTT (iDTT), to achieve integer to integer mapping for efficient lossless image compression. A series of experiments are carried out and results show that the proposed iDTT algorithm not only has higher compression ratio than iDCT method, but also is compatible with the widely used JPEG standard. (C) 2016 Elsevier B.V. All rights reserved.
Keyword:
Discrete Tchebichef Transform
Discrete cosine transform
Lossless image compression
JPEG
Matrix factorization
Image transform
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期刊

Neurocomputing 封面图
Neurocomputing
IF:
6.5
论文数:
2.5W
被引数:
6.5W

机构

C
chongqing university of posts & telecommunications
学者数:
6.7K
论文数: 5.3K
被引数: 5
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