A counting-based broadcast model of emergency message dissemination in VANETs
Irvanda Kurniadi Virdaus, Moonsoo Kang, Seokjoo Shin, Chung Ghiu Lee, Jae-Young Pyun
Abstract
Irvanda Kurniadi Virdaus, Moonsoo Kang, Seokjoo Shin, Chung Ghiu Lee, Jae-Young Pyun
Abstract
Driving safety application in vehicular ad hoc networks (VANETs) is enabled to avoid traffic accident by broadcasting emergency messages among vehicles. A multi-hop broadcast model is needed to represent a broadcast forwarding mechanism in disseminating an emergency message. However, most of the broadcast models are developed from a periodic single-hop broadcast with a single slot collision probability which cannot exactly represent a single-hop broadcast failure. Broadcast reliability is represented by the broadcast failure or the survivability of emergency message. Thus, we propose a new model to calculate a single-hop survival broadcast packet probability with a forwarding mechanism in a dissemination of emergency message application based on a counting method, which accounts all possible cases of contention window assignments to all the nodes simultaneously receiving a broadcast message. Our model successfully discloses a single-hop broadcast survival probability as a function of the size of contention window and the number of broadcasting nodes.
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Driving safety application in vehicular ad hoc networks (VANETs) is enabled to avoid traffic accident by broadcasting emergency messages among vehicles. A multi-hop broadcast model is needed to represent a broadcast forwarding mechanism in disseminating an emergency message. However, most of the broadcast models are developed from a periodic single-hop broadcast with a single slot collision probability which cannot exactly represent a single-hop broadcast failure. Broadcast reliability is represented by the broadcast failure or the survivability of emergency message. Thus, we propose a new model to calculate a single-hop survival broadcast packet probability with a forwarding mechanism in a dissemination of emergency message application based on a counting method, which accounts all possible cases of contention window assignments to all the nodes simultaneously receiving a broadcast message. Our model successfully discloses a single-hop broadcast survival probability as a function of the size of contention window and the number of broadcasting nodes.
Key concepts: Dissemination, Computer science, Atomic broadcast, Computer network, Broadcast radiation, Broadcasting (networking), Broadcast domain, Broadcast communication network