DocumentCode :
2420640
Title :
Acknowledgement design for collision-recovery-enabled wireless erasure networks
Author :
ParandehGheibi, Ali ; Sundararajan, Jay Kumar ; Médard, Muriel
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Massachusetts Inst. of Technol., Cambridge, MA, USA
fYear :
2010
fDate :
Sept. 29 2010-Oct. 1 2010
Firstpage :
435
Lastpage :
442
Abstract :
Current medium access control mechanisms are based on collision avoidance and collided packets are discarded. The recent work on ZigZag decoding departs from this approach by recovering the original packets from multiple collisions. In this paper, we view each collision as a linear combination of the original packets at the senders. The transmitted, colliding packets may themselves be a coded version of the original packets. We design acknowledgment (ACK) mechanisms based on the idea that if a set of packets collide, the receiver can afford to ACK exactly one of them without being able to decode the packet. We characterize the conditions for an ACK mechanism under which the receiver can eventually decode all of the packets. In the context of a wireless erasure network, we show that the senders´ queues behave as if the transmissions are controlled by a centralized scheduler which has access to channel state realizations at the beginning of each time slot. Taking advantage of this relation, we propose two ACK policies that stabilizes the system. One of these policies only requires the arrival rate information, while the other one only needs queue-length information. We also show that our ACK policies combined with a completely decentralized transmission mechanism based on random linear network coding achieves the cut-set bound of the packet erasure network, which is strictly larger than the stability region of the centralized scheduling schemes without collision recovery.
Keywords :
decoding; linear codes; network coding; queueing theory; radio networks; random codes; scheduling; ACK mechanisms; ZigZag decoding; arrival rate information; centralized scheduler; centralized scheduling schemes; channel state realizations; colliding packets; collision avoidance; collision recovery; collision-recovery-enabled wireless erasure networks; cut-set bound; decentralized transmission mechanism; design acknowledgment mechanism; medium access control mechanisms; packet decoding; packet erasure network; queue-length information; random linear network coding; receiver; sender queues; Decoding; Equations; Protocols; Receivers; Throughput; Wireless networks;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Communication, Control, and Computing (Allerton), 2010 48th Annual Allerton Conference on
Conference_Location :
Allerton, IL
Print_ISBN :
978-1-4244-8215-3
Type :
conf
DOI :
10.1109/ALLERTON.2010.5706939
Filename :
5706939
Link To Document :
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