DocumentCode :
3312734
Title :
Lossless image compression using BPNN predictor with contextual error feedback
Author :
Puthooran, Emjee ; Anand, R.S. ; Mukherjee, S.
Author_Institution :
Indian Inst. of Technol. Roorkee, Roorkee, India
fYear :
2011
fDate :
17-19 Dec. 2011
Firstpage :
145
Lastpage :
148
Abstract :
In this paper, a lossless image coding scheme is proposed, which is based on Back Propagation Neural Network (BPNN) pixel value predictor, contextual error feedback and context adaptive arithmetic coding. The use of BPNN predictor in the proposed image compression scheme has resulted in improved compression ratio in comparison to the benchmark lossless compression schemes, LOCO-I and CALIC. The main advantage of BPNN pixel value predictor is its capability to adapt itself to the image being coded. The use of BPNN predictor resulted in lower values for entropy as compared to other predictors such as, MED (Median Edge Detection predictor) and GAP (Gradient-Adjusted Predictor) used in LOCO-I and CALIC respectively. The average bits per pixel (bpp) value obtained by utilizing the proposed scheme for nine test images indicate an improvement by 7.6% over LOCO-I, 2.85% over CALIC and 8.82% over JPEG2000 in lossless mode.
Keywords :
adaptive codes; arithmetic codes; backpropagation; data compression; feedforward neural nets; image coding; neural nets; BPNN pixel value predictor; GAP; JPEG2000; MED; backpropagation neural network; compression ratio; context adaptive arithmetic coding; contextual error feedback; gradient-adjusted predictor; lossless image coding scheme; lossless image compression scheme; median edge detection predictor; Context; Context modeling; Entropy; Image coding; Lakes; Neurons; Transform coding;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Multimedia, Signal Processing and Communication Technologies (IMPACT), 2011 International Conference on
Conference_Location :
Aligarh
Print_ISBN :
978-1-4577-1105-3
Type :
conf
DOI :
10.1109/MSPCT.2011.6150459
Filename :
6150459
Link To Document :
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