DocumentCode
3429868
Title
Multimode image coding for noisy channels
Author
Regunathan, Shankar L. ; Rose, Kenneth ; Gadkari, Shrinivas
Author_Institution
Dept. of Electr. & Comput. Eng., California Univ., Santa Barbara, CA, USA
fYear
1997
fDate
25-27 Mar 1997
Firstpage
82
Lastpage
90
Abstract
We attack the problem of robust and efficient image compression for transmission over noisy channels. To achieve the dual goals of high compression efficiency and low sensitivity to channel noise we introduce a multimode coding framework. Multimode coders are quasi-fixed length in nature, and allow optimization of the tradeoff between the compression capability of variable-length coding and the robustness to channel errors of fixed length coding. We apply our framework to develop multimode image coding (MIC) schemes for noisy channels, based on the adaptive DCT. The robustness of the proposed MIC is further enhanced by the incorporation of a channel protection scheme suitable for the constraints on complexity and delay. To demonstrate the power of the technique we develop two specific image coding algorithms optimized for the binary symmetric channel. The first, MIC1, incorporates channel optimized quantizers and the second, MIC2, uses rate compatible punctured convolutional codes within the multimode framework. Simulations demonstrate that the multimode coders obtain significant performance gains of up to 6 dB over conventional fixed length coding techniques
Keywords
channel coding; convolutional codes; data compression; discrete cosine transforms; image coding; telecommunication channels; transform coding; variable length codes; adaptive DCT; binary symmetric channel; channel optimized quantizers; channel protection scheme; complexity constraints; delay constraints; fixed length coding; high compression efficiency; image compression; multimode image coding; noisy channels; quasi-fixed length coder; rate compatible punctured convolutional codes; variable-length coding; Application software; Delay; Digital signal processing; Discrete cosine transforms; Image coding; Microwave integrated circuits; Noise robustness; Performance gain; Protection; Semiconductor device noise;
fLanguage
English
Publisher
ieee
Conference_Titel
Data Compression Conference, 1997. DCC '97. Proceedings
Conference_Location
Snowbird, UT
ISSN
1068-0314
Print_ISBN
0-8186-7761-9
Type
conf
DOI
10.1109/DCC.1997.581974
Filename
581974
Link To Document