2017 International Conference on Wireless Communications, Signal Processing and Networking (WiSPNET) 2017
DOI: 10.1109/wispnet.2017.8300175
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Vehicle collision warning algorithms implemented in VANET communication terminals

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Cited by 3 publications
(1 citation statement)
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“…In [105] an efficient algorithm based on V2I and V2V was presented to assess the risk, warn the driver and mitigate collisions at the intersection using Dynamic Bayesian Networks (DBNs) and state information of the vehicle. Xia et al [106] proposed V2V-based efficient warning algorithms for two collision scenarios, namely rear-end and intersection with respect to the information captured from the vehicle state. Additionally, authors in [107] focused on calculation of the collision probability of two vehicles' trajectories at the intersection with the help of their speed, position, motion capture device, intention of the driver and V2V communication.…”
Section: A Safetymentioning
confidence: 99%
“…In [105] an efficient algorithm based on V2I and V2V was presented to assess the risk, warn the driver and mitigate collisions at the intersection using Dynamic Bayesian Networks (DBNs) and state information of the vehicle. Xia et al [106] proposed V2V-based efficient warning algorithms for two collision scenarios, namely rear-end and intersection with respect to the information captured from the vehicle state. Additionally, authors in [107] focused on calculation of the collision probability of two vehicles' trajectories at the intersection with the help of their speed, position, motion capture device, intention of the driver and V2V communication.…”
Section: A Safetymentioning
confidence: 99%