DocumentCode :
16505
Title :
Joint Source-Channel Coding for Deep-Space Image Transmission using Rateless Codes
Author :
Bursalioglu, O.Y. ; Caire, Giuseppe ; Divsalar, Dariush
Author_Institution :
Docomo Innovations Inc., Palo Alto, CA, USA
Volume :
61
Issue :
8
fYear :
2013
fDate :
Aug-13
Firstpage :
3448
Lastpage :
3461
Abstract :
A new coding scheme for image transmission over noisy channel is proposed. Similar to standard image compression, the scheme includes a linear transform followed by successive refinement scalar quantization. Unlike conventional schemes, though, in the proposed system the quantized transform coefficients are linearly mapped into channel symbols using systematic linear encoders. This fixed-to-fixed length "linear index coding" approach avoids the use of an explicit entropy coding stage (e.g., arithmetic or Huffman coding), which is typically fragile to channel post-decoding residual errors. We use linear codes over GF(4), which are particularly suited for this application, since they are matched to the dead-zone quantizer symbol alphabet and to the QPSK modulation used on the deep-space communication channel. We optimize the proposed system where the linear codes are systematic Raptor codes over GF(4). The rateless property of Raptor encoders allows to implement a "continuum" of coding rates, in order to accurately match the channel coding rate to the transmission channel capacity and to the quantized source entropy rate for each transform subband and refinement level. Comparisons are provided with respect to the concatenation of state-of-the-art image coding and channel coding schemes used by Jet Propulsion Laboratories (JPL) for the Mars Exploration Rover (MER) Mission.
Keywords :
combined source-channel coding; decoding; image coding; linear codes; quantisation (signal); space communication links; transforms; visual communication; wireless channels; QPSK modulation; Raptor encoders; channel coding rate matching; channel post-decoding residual errors; channel symbols; coding rate continuum implementation; dead-zone quantizer symbol alphabet; deep-space communication channel; deep-space image transmission; explicit entropy coding stage; fixed-to-fixed length linear index coding approach; image coding; joint source-channel coding; linear mapping; linear transform; noisy channel; quantized source entropy rate; quantized transform coefficients; rateless codes; rateless property; successive refinement scalar quantization; systematic Raptor codes; systematic linear encoders; transmission channel capacity; Channel coding; Decoding; Entropy; Image coding; Quantization (signal); Systematics; Joint source-channel coding; deep-space communications; image coding; raptor codes;
fLanguage :
English
Journal_Title :
Communications, IEEE Transactions on
Publisher :
ieee
ISSN :
0090-6778
Type :
jour
DOI :
10.1109/TCOMM.2013.061913.120747
Filename :
6549238
Link To Document :
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