Intersection-Based Link-Adaptive Beaconless Forwarding in Urban Vehicular Ad-Hoc Networks
Abstract
:1. Introduction
- A novel receiver-based data forwarding protocol called intersection-based link-adaptive beaconless forwarding for city scenarios (ILBFC) is proposed. ILBFC exploits geographic information of road intersections in limiting the duration for which a relay vehicle stays as a default forwarder. Also, the maximum duration for which a relay vehicle can be a default forwarder is fixed based on the maximum road length between the two road intersections.
- An urban road traffic adaptive winner relay management scheme is employed, where the relay vehicle when acting as default forwarder decides on every data packet reception whether or not to continue as default forwarder. The decision is based on the relative geographic progress of current and previous relay vehicles towards destination. This is done with the aim to take into account the drastic decay in the speed of vehicles due to the road intersections and traffic signals encountered in urban VANETs.
- The proposed ILBFC is then simulated in realistic traffic conditions and its performance is compared with other existing state-of-the-art routing protocols. The comparison is done in terms of three performance metrics: packet delivery ratio (PDR), average ETE delay, and a new metric called packet redundancy coefficient (PRC), where PRC gives a measure of routing protocol’s ability to disseminate the data packet in unicast fashion.
2. Background
2.1. Remote Monitoring Applications in VANETs
2.1.1. Emergency Telemedicine
2.1.2. Commercial Driver Safety
2.1.3. Mobile Surveillance
2.2. Specific Characteristics of Remote Monitoring in Urban VANETs
2.2.1. Urban Environment Constraints
2.2.2. Data Rate Requirement
2.3. Routing in VANETs
2.3.1. Classification
2.3.2. Challenges
2.4. Receiver-Based Data Forwarding
2.4.1. Basic Idea
2.4.2. Related Work
3. Intersection-Based Link-Adaptive Beaconless Forwarding for City Scenarios
3.1. VANET Model
3.2. Routing Protocol Design
3.2.1. Redundant Packet Elimination
3.2.2. Forwarding Zone
3.2.3. Waiting Time Criteria
3.2.4. Winner Relay Management
3.2.5. Loop Protection
4. Performance Analysis
4.1. Scenario Setup and Performance Metrics
4.2. Protocol Specification
4.2.1. Link-Adaptive Beaconless Forwarding
4.2.2. Distributed Beaconless Dissemination
4.2.3. Beacon-Less Routing
4.3. Simulation Results
4.3.1. Source Transmission Rate Variation
4.3.2. Node Density Variation
4.3.3. Maximum Node Velocity Variation
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Sensor | Signal | Data Rate |
---|---|---|
Physiological [35,36] | ECG | 24–288 kbps |
EEG | 43.2 kbps | |
EMG | 320 kbps | |
EOG | 1.2 kbps | |
EDA | 1.2 kbps | |
Heart Rate | 2–5 kbps | |
Blood Pressure | 2–5 kbps | |
Respiration | 800 bps | |
Audio [35] | Voice | 4–25 kbps |
Sound Diagnostic | 32–256 kbps | |
Camera | Images [37] | 200 kbps |
Video Telephony [38] | 32 kbps | |
Video Streaming [39,40,41] | 100–500 kbps |
Parameter | Value |
---|---|
Area | 1200 m × 1200 m |
Simulation time | 300 s |
Number of simulation runs | 30 |
Transmission range | 450 m |
Transmission power | 29.3 dBm |
Channel frequency | 5.9 GHz |
MAC, PHY parameters | IEEE 802.11p |
Data traffic | CBR |
Data packet size | 512 B |
Buffer size | 51.2 kB |
Nominal bandwidth | 27 Mbps |
Antenna type | Omnidirectional |
Antenna height | 1.895 m |
0.9691 dB | |
0.3 dB | |
0.2 dB | |
Pathloss model | Two ray interference |
Shadowing effect, | 4 dB |
Receiver sensitivity | −71.65 dBm |
Parameter | Value | Parameter | Value |
---|---|---|---|
50 ms | 3 | ||
50 ms | 6 | ||
0.5 | 10 ms |
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Husain, K.; Awang, A.; Kamel, N.; Aïssa, S. Intersection-Based Link-Adaptive Beaconless Forwarding in Urban Vehicular Ad-Hoc Networks. Sensors 2019, 19, 1242. https://doi.org/10.3390/s19051242
Husain K, Awang A, Kamel N, Aïssa S. Intersection-Based Link-Adaptive Beaconless Forwarding in Urban Vehicular Ad-Hoc Networks. Sensors. 2019; 19(5):1242. https://doi.org/10.3390/s19051242
Chicago/Turabian StyleHusain, Khaleel, Azlan Awang, Nidal Kamel, and Sonia Aïssa. 2019. "Intersection-Based Link-Adaptive Beaconless Forwarding in Urban Vehicular Ad-Hoc Networks" Sensors 19, no. 5: 1242. https://doi.org/10.3390/s19051242
APA StyleHusain, K., Awang, A., Kamel, N., & Aïssa, S. (2019). Intersection-Based Link-Adaptive Beaconless Forwarding in Urban Vehicular Ad-Hoc Networks. Sensors, 19(5), 1242. https://doi.org/10.3390/s19051242