Title :
Joint source-channel coding for motion-compensated DCT-based SNR scalable video
Author :
Kondi, Lisimachos P. ; Ishtiaq, Faisal ; Katsaggelos, Aggelos K.
Author_Institution :
Dept. of Electr. Eng., State Univ. of New York, Buffalo, NY, USA
fDate :
9/1/2002 12:00:00 AM
Abstract :
In this paper, we develop an approach toward joint source-channel coding for motion-compensated DCT-based scalable video coding and transmission. A framework for the optimal selection of the source and channel coding rates over all scalable layers is presented such that the overall distortion is minimized. The algorithm utilizes universal rate distortion characteristics which are obtained experimentally and show the sensitivity of the source encoder and decoder to channel errors. The proposed algorithm allocates the available bit rate between scalable layers and, within each layer, between source and channel coding. We present the results of this rate allocation algorithm for video transmission over a wireless channel using the H.263 Version 2 signal-to-noise ratio (SNR) scalable codec for source coding and rate-compatible punctured convolutional (RCPC) codes for channel coding. We discuss the performance of the algorithm with respect to the channel conditions, coding methodologies, layer rates, and number of layers.
Keywords :
combined source-channel coding; convolutional codes; data compression; discrete cosine transforms; mobile radio; motion compensation; rate distortion theory; transform coding; video coding; visual communication; H.263 Version 2 signal-to-noise ratio scalable codec; RCPQ codes; available bit rate; channel errors; coding methodologies; distortion; joint source-channel coding; layer rates; motion-compensated DCT-based SNR scalable video; rate allocation algorithm; rate-compatible punctured convolutional codes; source decoder; source encoder; universal rate distortion characteristics; video coding; video transmission; wireless channel; Bit rate; Channel coding; Codecs; Convolutional codes; Decoding; Rate-distortion; Signal to noise ratio; Source coding; Video coding; Wireless sensor networks;
Journal_Title :
Image Processing, IEEE Transactions on
DOI :
10.1109/TIP.2002.802507