DocumentCode
1255967
Title
Multihop R-ALOHA for intervehicle communications at millimeter waves
Author
Verdone, Roberto
Author_Institution
CNRS, Bologna Univ., Italy
Volume
46
Issue
4
fYear
1997
fDate
11/1/1997 12:00:00 AM
Firstpage
992
Lastpage
1005
Abstract
With reference to road transport information (RTI) applications, such as cooperative driving, short-range intervehicle communications in a highway environment are investigated in this paper. The research in this field indicates the suitability of the 60-64-GHz band. Due to the distributed nature of the intervehicle communication system, an R-ALOHA protocol is considered; multihop (MH) and single-hop (SH) strategies are compared. Network performance is assessed by considering the joint impact of random access, interference, thermal noise, propagation, and packet capture effect. Several figures of merit are analyzed and discussed: packet success probability (PSP), system stabilization time (SST), first success time (FST), and deadline failure probability (DFP). Network performance is evaluated either by an analytical approach or by a software tool able to simulate a one-lane highway scenario. Both steady-state and transition situations are considered. System performance in terms of PSP (in the presence of two-way Rice fading, noise, and interference with antenna diversity and selection combining) is analytically evaluated to validate the simulation tool and to prove the suitability of an MH network strategy. The simulation approach allows the evaluation of the impact of protocol parameters on network performance, with reference to nonsteady-state situations
Keywords
access protocols; cochannel interference; data communication; land mobile radio; millimetre wave propagation; multi-access systems; packet radio networks; traffic information systems; 60 to 64 GHz; R-ALOHA protocol; cooperative driving; deadline failure probability; first success time; highway environment; interference; intervehicle communications; millimeter waves; multihop R-ALOHA; network performance; nonsteady-state situations; packet capture effect; packet success probability; propagation; random access; road transport information applications; simulation tool; steady-state situation; system stabilization time; thermal noise; Access protocols; Analytical models; Diversity reception; Failure analysis; Interference; Performance analysis; Road transportation; Software tools; Spread spectrum communication; Steady-state;
fLanguage
English
Journal_Title
Vehicular Technology, IEEE Transactions on
Publisher
ieee
ISSN
0018-9545
Type
jour
DOI
10.1109/25.653073
Filename
653073
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