Performance Analysis of IEEE 802.11p MAC with Considering Capture Effect under Nakagami-m Fading Channel in VANETs
Abstract
:1. Introduction
2. Related Works
3. Analytical Model
3.1. Description of DCF
3.2. Probabilities of Transmission and Collision
3.3. Normalized Throughput
3.4. Average Packet Delay
4. Model Validation
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Notation | Definition |
---|---|
Average length of Payload | |
Duration of header | |
Duration of ACK | |
Duration of RTS | |
Duration of CTS | |
Duration of SIFS | |
Duration of DIFS | |
Channel rate | |
The parameter of Nakagami fading | |
Duration of a backoff slot | |
Average duration of a successful transmission | |
Average duration of a collided transmission | |
Propagation delay | |
Maximum backoff stage | |
Retransmission times after reaching the maximum backoff stage | |
Number of nodes in the network | |
Capture threshold | |
The signal power from node | |
Average received power at each node | |
Probability of capture effect | |
Probability that the channel is busy | |
Probability that the node observes a collided transmission | |
Contention window of backoff stage | |
Minimum contention window | |
Maximum contention window | |
Probability that a node transmits in a randomly chosen slot | |
Probability that there is at least one transmission in the concerned slot | |
Probability that one node successfully transmits in a concerned slot conditioned on that at least one node transmits | |
Average length of a virtual slot | |
Normalized throughput |
Parameter | Setting | Parameter | Setting |
---|---|---|---|
512 bytes | 32 | ||
224 bits | 58 | ||
192 bits | 13 | ||
ACK | 304 bits | 1 | |
RTS | 352 bits | 32 | |
CTS | 304 bits | 1024 | |
11 Mbps | 5 | ||
1.5 | 2 | ||
2 | Simulation time | 200 s |
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Wang, Y.; Shi, J.; Chen, L. Performance Analysis of IEEE 802.11p MAC with Considering Capture Effect under Nakagami-m Fading Channel in VANETs. Entropy 2023, 25, 218. https://doi.org/10.3390/e25020218
Wang Y, Shi J, Chen L. Performance Analysis of IEEE 802.11p MAC with Considering Capture Effect under Nakagami-m Fading Channel in VANETs. Entropy. 2023; 25(2):218. https://doi.org/10.3390/e25020218
Chicago/Turabian StyleWang, Yang, Jianghong Shi, and Lingyu Chen. 2023. "Performance Analysis of IEEE 802.11p MAC with Considering Capture Effect under Nakagami-m Fading Channel in VANETs" Entropy 25, no. 2: 218. https://doi.org/10.3390/e25020218
APA StyleWang, Y., Shi, J., & Chen, L. (2023). Performance Analysis of IEEE 802.11p MAC with Considering Capture Effect under Nakagami-m Fading Channel in VANETs. Entropy, 25(2), 218. https://doi.org/10.3390/e25020218