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MAC Design for Analog Network Coding

Author(s)
Khabbazian, Majid; Kuhn, Fabian; Lynch, Nancy Ann; Medard, Muriel; Parandehgheibi, Ali
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Abstract
Most medium access control (MAC) mechanisms discard collided packets and consider interference harmful. Recent work on Analog Network Coding (ANC) suggests a different approach, in which multiple interfering transmissions are strategically scheduled. Receiving nodes collect the results of collisions and then use a decoding process, such as ZigZag decoding, to extract the packets involved in the collisions. In this paper, we present an algebraic representation of collisions and describe a general approach to recovering collisions using ANC. To study the effects of using ANC on the performance of MAC layers, we develop an ANC-based MAC algorithm, CMAC, and analyze its performance in terms of probabilistic latency guarantees for local packet delivery. Specifically, we prove that CMAC implements an abstract MAC layer service, as defined in [14, 13]. This study shows that ANC can significantly improve the performance of the abstract MAC layer service compared to conventional probabilistic transmission approaches. We illustrate how this improvement in the MAC layer can translate into faster higher-level algorithms, by analyzing the time complexity of a multi-message network-wide broadcast algorithm that uses CMAC.
Date issued
2011-06
URI
http://hdl.handle.net/1721.1/72944
Department
Massachusetts Institute of Technology. Computer Science and Artificial Intelligence Laboratory; Massachusetts Institute of Technology. Research Laboratory of Electronics
Journal
Proceedings of the 7th ACM ACM SIGACT/SIGMOBILE International Workshop on Foundations of Mobile Computing (FOMC '11)
Publisher
Association for Computing Machinery (ACM)
Citation
Majid Khabbazian, Fabian Kuhn, Nancy Lynch, Muriel Médard, and Ali ParandehGheibi. 2011. MAC design for analog network coding. In Proceedings of the 7th ACM ACM SIGACT/SIGMOBILE International Workshop on Foundations of Mobile Computing (FOMC '11). ACM, New York, NY, USA, 42-51.
Version: Author's final manuscript
ISSN
978-1-4503-0779-6

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