DocumentCode :
1611900
Title :
Multiplexing VBR video and training sequences on wireless fading channels
Author :
Freiha, F. ; Chandra, K. ; Mehta, V. ; Thompson, C.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Massachusetts Lowell, Lowell, MA, USA
Volume :
1
fYear :
1999
fDate :
6/21/1905 12:00:00 AM
Firstpage :
97
Abstract :
A time slotted multiple access scheme that shares bandwidth between source and training signals is proposed for the transmission of variable bit rate (VBR) video signals over non-ideal channels. The error performance is examined using finite state Markov chains that model both the VBR source traffic and the time variation of fading channels. The characteristic time-scale of the fade duration, the step-size parameter of the LMS equalizer training algorithm, and the number of training sequences allocated per time slot jointly influence the error performance. The consideration of the physical layer characteristics in the design of higher layer protocols enhances the performance of conventional application layer based preventive and reactive error control schemes. Simulation results for fast and slow fading channels show that the proposed channel access scheme can lead to an order of magnitude decrease in the bit error ratio if the combination of training overhead and step-size parameter are chosen judiciously with respect to the fading time-scale. In addition, the multiplexing efficiency of VBR encoded video is shown to be useful for limiting the channel access delays when training overhead is increased
Keywords :
Markov processes; access protocols; adaptive equalisers; decision feedback equalisers; delays; digital simulation; equalisers; error statistics; fading channels; image sequences; land mobile radio; least mean squares methods; military communication; multi-access systems; multipath channels; multiplexing; telecommunication traffic; variable rate codes; video coding; DFE; LMS equalizer training algorithm; VBR encoded video; VBR source traffic; VBR video sequence multiplexing; application layer; bandwidth sharing; bit error ratio; channel access; channel access delays; characteristic time-scale; error performance; fade duration; fading time-scale; fast fading channel; finite state Markov chains; higher layer protocols design; military communications; mobile terminals; multipath fading; multiplexing efficiency; nonideal channels; physical layer characteristics; preventive error control; reactive error control; real-time packet transmission; simulation results; slow fading channel; source signals; step-size parameter; time slotted multiple access; time varying channels; training overhead; training sequence multiplexing; training signals; variable bit rate video signals; wireless fading channels; Access protocols; Bandwidth; Bit rate; Equalizers; Error correction; Fading; Least squares approximation; Physical layer; Traffic control; Video sharing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Military Communications Conference Proceedings, 1999. MILCOM 1999. IEEE
Conference_Location :
Atlantic City, NJ
Print_ISBN :
0-7803-5538-5
Type :
conf
DOI :
10.1109/MILCOM.1999.822650
Filename :
822650
Link To Document :
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