Title :
Multiple description coding of motion fields for robust video transmission
Author :
Kim, Chang-Su ; Lee, Sang-Uk
Author_Institution :
Dept. of Electr. Eng. Syst., Univ. of Southern California, Los Angeles, CA, USA
fDate :
9/1/2001 12:00:00 AM
Abstract :
In many video-coding standards, the motion vector field is one of the most important data in the compressed bitstream, and its loss can lead to severe degradation in the decoded picture quality. We propose the multiple description motion coding (MDMC) algorithm to enhance the robustness of the motion vector field against transmission errors. In MDMC, the motion vector field is encoded into two descriptions, which are transmitted over distinct channels to the decoder. The decoder is designed to provide an acceptable quality prediction image, even if one of the descriptions is lost during the transmission. Moreover, the decoder can reconstruct a higher quality prediction image, when both the descriptions are received without error. A complete multiple description video coder, based on the MDMC, is implemented by modifying the syntax of the H.263 standard, and tested intensively in a realistic error-prone environment. It is shown that the proposed algorithm provides much better objective and subjective performances than the H.263 coder in the error-prone environment
Keywords :
code standards; data compression; decoding; image motion analysis; image reconstruction; telecommunication standards; video coding; visual communication; H.263 coder; H.263 standard; MDMC algorithm; compressed bitstream; decoded picture quality; decoder; error-prone environment; image reconstruction; motion compensation; motion estimation; motion fields; motion vector field; multiple description motion coding; multiple description video coder; objective performance; prediction image quality; robust video transmission; subjective performance; transmission errors; video-coding standards; Asynchronous transfer mode; Decoding; Degradation; Image coding; Image sequences; Propagation losses; Robustness; Transform coding; Video compression; Working environment noise;
Journal_Title :
Circuits and Systems for Video Technology, IEEE Transactions on