Analytical Models of the Performance of IEEE 802.11p Vehicle to Vehicle Communications
The critical nature of vehicular communications requires their extensive testing and evaluation. Analytical models can represent an attractive and cost-effective approach for such evaluation if they can adequately model all underlying effects that impact the performance of vehicular communications....
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Published in: | IEEE transactions on vehicular technology Vol. 71; no. 1; pp. 713 - 724 |
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Main Authors: | , , , , |
Format: | Journal Article |
Language: | English |
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IEEE
01-01-2022
The Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
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Abstract | The critical nature of vehicular communications requires their extensive testing and evaluation. Analytical models can represent an attractive and cost-effective approach for such evaluation if they can adequately model all underlying effects that impact the performance of vehicular communications. Several analytical models have been proposed to date to model vehicular communications based on the IEEE 802.11p (or DSRC) standard. However, existing models normally model in detail the MAC (Medium Access Control), and generally simplify the propagation and interference effects. This reduces their value as an alternative to evaluate the performance of vehicular communications. This paper addresses this gap, and presents new analytical models that accurately model the performance of vehicle-to-vehicle communications based on the IEEE 802.11p standard. The models jointly account for a detailed modeling of the propagation and interference effects, as well as the impact of the hidden terminal problem. The model quantifies the PDR (Packet Delivery Ratio) as a function of the distance between transmitter and receiver. The paper also presents new analytical models to quantify the probability of the four different types of packet errors in IEEE 802.11p. In addition, the paper presents the first analytical model capable to accurately estimate the Channel Busy Ratio (CBR) metric even under high channel load levels. All the analytical models are validated by means of simulation for a wide range of parameters, including traffic densities, packet transmission frequencies, transmission power levels, data rates and packet sizes. An implementation of the models is provided openly to facilitate their use by the community. |
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AbstractList | The critical nature of vehicular communications requires their extensive testing and evaluation. Analytical models can represent an attractive and cost-effective approach for such evaluation if they can adequately model all underlying effects that impact the performance of vehicular communications. Several analytical models have been proposed to date to model vehicular communications based on the IEEE 802.11p (or DSRC) standard. However, existing models normally model in detail the MAC (Medium Access Control), and generally simplify the propagation and interference effects. This reduces their value as an alternative to evaluate the performance of vehicular communications. This paper addresses this gap, and presents new analytical models that accurately model the performance of vehicle-to-vehicle communications based on the IEEE 802.11p standard. The models jointly account for a detailed modeling of the propagation and interference effects, as well as the impact of the hidden terminal problem. The model quantifies the PDR (Packet Delivery Ratio) as a function of the distance between transmitter and receiver. The paper also presents new analytical models to quantify the probability of the four different types of packet errors in IEEE 802.11p. In addition, the paper presents the first analytical model capable to accurately estimate the Channel Busy Ratio (CBR) metric even under high channel load levels. All the analytical models are validated by means of simulation for a wide range of parameters, including traffic densities, packet transmission frequencies, transmission power levels, data rates and packet sizes. An implementation of the models is provided openly to facilitate their use by the community. |
Author | Molina-Masegosa, Rafael Gozalvez, Javier Sepulcre, Miguel Coll-Perales, Baldomero Gonzalez-Martin, Manuel |
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Cites_doi | 10.1109/GLOCOM.2011.6134014 10.1109/TVT.2013.2284594 10.1109/TVT.2011.2165975 10.1109/JCN.2017.000026 10.3390/s21010159 10.1109/TITS.2012.2183366 10.1109/TVT.2009.2036927 10.1016/j.comcom.2019.08.026 10.1109/TVT.2011.2162755 10.1109/ACCESS.2020.3000534 10.1109/TWC.2008.060859 10.1109/JSAC.2011.110115 10.1109/TVT.2018.2888704 10.1109/LCOMM.2011.122810.102007 10.1109/INFCOM.2013.6566955 10.1016/j.aeue.2019.01.014 10.1109/TVT.2017.2750803 10.1109/TVT.2015.2425960 10.3390/s17122890 10.1109/VETECF.2011.6093282 10.1109/ACCESS.2021.3052464 10.1007/s11277-016-3252-6 10.1109/49.840210 10.1109/FTC.2016.7821607 10.1109/TVT.2014.2366155 10.1016/j.comnet.2010.04.015 10.1109/JSAC.2011.110103 10.1109/TVT.2006.878606 10.1109/TSP.2019.8769073 |
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SubjectTerms | Access control Analytical Analytical models CBR channel load Communications traffic Computational modeling Cost analysis DSRC IEEE 802.11p Interference ITS-G5 Load modeling Mathematical models packet collisions Packet transmission Performance evaluation Propagation Receivers Unicast V2V V2X Vehicle-to-everything vehicular communications vehicular networks |
Title | Analytical Models of the Performance of IEEE 802.11p Vehicle to Vehicle Communications |
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