Title :
Low-delay and error-robust wireless video transmission for video communications
Author :
Wang, Tu-Chih ; Fang, Hung-Chi ; Chen, Liang-Gee
Author_Institution :
Dept. of Electr. Eng., Nat. Taiwan Univ., Taipei, Taiwan
fDate :
12/1/2002 12:00:00 AM
Abstract :
Video communications over wireless networks often suffer from various errors. A novel video transmission architecture is proposed to meet the low-delay and error-robust requirement of wireless video communications. This architecture uses forward error correction coding and automatic repeat request (ARQ) protocol to provide efficient bandwidth access from wireless link. In order to reduce ARQ delay, a video proxy server is implemented at the base station. This video proxy not only reduces the ARQ response time, but also provides error-tracking functionality. The complexity of this video proxy server is analyzed. Experiment shows that about 8.9% of the total macroblocks need to be transcoded under a random-error condition of 10-3 error probability. Because H.263 is the most popular video coding standard for video communication, we use it as an experiment platform. A data-partition scheme is also used to enhance error-resilience performance. This architecture is also suitable for various motion-compensation-based standards like H.261, H.263 series, MPEG-1, MPEG-2, MPEG-4, and H.264. For "Foreman" sequence under a random-error condition of 10-3 error probability, luminance peak signal-to-noise ratio decreases only 0.35 dB, on average.
Keywords :
automatic repeat request; code standards; data compression; delays; forward error correction; protocols; radio networks; telecommunication standards; video coding; visual communication; ARQ delay; ARQ protocol; ARQ response time reduction; FEC coding; H.261; H.263 series; H.264; MPEG-1; MPEG-2; MPEG-4; automatic repeat request protocol; base station; data-partition; error probability; error robustness; error-resilience performance; error-robust wireless video transmission; forward error correction coding; image sequence; low-delay wireless video transmission; luminance peak signal-to-noise ratio; motion compensation-based standards; random errors; video coding standard; video proxy server; video transmission architecture; wireless link; Access protocols; Automatic repeat request; Bandwidth; Base stations; Delay; Error probability; Forward error correction; Wireless application protocol; Wireless communication; Wireless networks;
Journal_Title :
Circuits and Systems for Video Technology, IEEE Transactions on
DOI :
10.1109/TCSVT.2002.806807