Analysis of MCP-Distributed Jammers and 3D Beam-Width Variations for UAV-Assisted C-V2X Millimeter-Wave Communications
Abstract
:1. Introduction
1.1. Related Works
1.2. Motivation and Objectives
- The work presented in [11] considers a C-V2X network that evaluates the association probability, coverage probability, and rate performance of the V-N. However, our investigated system considers a UAV-assisted C-V2X network that leverages UAVs and MBSs by considering a millimeter-wave antenna and evaluates association, coverage, and SE of the V-N.
- The work presented in [16] considers a UAV-assisted cellular network that leverages LOS UAVs, NLOS UAVs, and MBSs. However, the work does not consider vehicular communications in the presence of jammers. Our method evaluates UAV-assisted C-V2X communications, exploiting jamming and millimeter-wave antennas.
- The work presented in [26] considers UAV-assisted C-V2X communications and evaluates bandwidth efficiency. However, the work does not consider jamming interference as well as 3D beamforming millimeter-wave antennas. Our analysis considers millimeter-wave antennas for UAV-assisted C-V2X communications by exploiting clustered jamming and evaluates association probability, coverage probability, and SE of the network. Also, our setup investigates the effect of 3D antenna beam-width variations on the system’s efficiency.
- A framework for a UAV-assisted C-V2X network, which considers jammers and beam variations, is presented.
- The performance of V2V, V2M, V2L, and V2N connections, considering clustered jamming, is evaluated in terms of coverage and SE by varying network parameters such as the number of V-Ns, MBSs, and LAPs.
- Analytical equations for the association and coverage of V2V, V2M, V2L, and V2N connections, along with the clustered jamming devices, are derived.
- The outcomes demonstrate that the effectiveness of UAV-assisted C-V2X transmissions is severely degraded in a network that is exploited by jamming and beam variations.
2. System Model
3. Distance Distribution
4. Typical Vehicle’s Association
4.1. Probability of V2V Association
4.2. Probability of V2M Association
4.3. Probability of V2L Association
4.4. Probability of V2N Association
5. Interference Analysis
5.1. V-Ns Interference
5.2. MBSs Interference
5.3. LOS-LAPs Interference
5.4. NLOS-LAPs Interference
5.5. Jammers Interference
6. Performance Metrics
6.1. Coverage Probability
6.2. Spectrum Efficiency
7. Mitigating Jamming Interference
8. Network Setup, Results, and Discussion
8.1. Simulation Setup and Limitations
8.2. Results and Discussion
9. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Appendix A. Derivation of (13)
Appendix B. Derivation of (40)
Appendix C. Derivation of (56)
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Work | Main Focus of the System Model | Basic Outcome | Limitation |
---|---|---|---|
[4] | C-V2X network | Association and coverage probability derivation | Evaluation of millimeter wave connectivity and SE |
[5] | C-V2X network | Probability of association of a V-N and user load on the base station | Evaluation of millimeter waves communications and SE |
[10] | C-V2X network | Probability of association and coverage of a V-N | Analysis of UAVs employing millimeter waves communications and SE analysis. |
[27] | C-V2X network | Analysis of millimeter waves and beam alignment closed-form analysis | Probability of association, coverage analysis, and SE analysis |
[7] | V2X network | Analysis of millimeter waves and beam tracking | Vibrating beam width and coverage analysis |
[6] | C-V2X network | probability of association, coverage analysis, and SE analysis | UAV-assisted C-V2X analysis |
[11] | C-V2X network | Probability of association and coverage of a V-N | Analysis of millimeter waves, UAV-assisted C-V2X, and SE analysis |
[1] | C-V2X network | Analysis of jamming, millimeter waves, probability of association, coverage analysis, and SE analysis | UAV-assisted V2X analysis |
[21,23,28] | UAV-assisted network | Analysis of millimeter waves, vibrating beam-width modeling, and coverage analysis | U-V2X network and SE analysis |
[9] | U-V2X network | Analysis of millimeter waves and beam-tracking | Beam-width vibrations, coverage analysis, and SE analysis |
[8] | U-V2X network | Packet delay computation | Vibrating beam width, coverage, and SE analysis |
[13] | Cellular network with aerial jammers | Analysis of jamming, millimeter waves analysis, probability of association analysis, and coverage analysis | UAV-assisted V2X analysis |
[16] | UAV-assisted network | Probability of association and coverage analysis | Analysis of jamming signals, vibrating beam width, and SE analysis |
[19] | U-V2X network | Analysis of jamming, millimeter waves, probability of association, coverage derivation, and SE derivation | UAV-assisted V2X analysis |
[26] | UAV-assisted C-V2X network | Band-width efficiency analysis | Analysis of jamming signals, beam-width vibrations, probability of association, and coverage analysis |
This work | UAV-assisted C-V2X network and clustered jamming | Analysis of clustered jammers, beam-width vibrations, association probability, coverage probability, and SE | – |
Network Parameter | Value | Network Parameter | Value |
---|---|---|---|
3/km2 | 3 | ||
3/km | 3 | ||
3/km2 | 4 | ||
6/km2 | 2.5 | ||
−5 dB | 1 | ||
80 m | 20 | ||
12.08 | 20 | ||
0.21 | 0.001 | ||
0° | 10 MHz | ||
5 dB | 1 dB | ||
1 dB | 1 | ||
60 GHz | c | 0.3 G m/s | |
100 m | 2/km2 | ||
J | 2 | 23 dBm | |
3 |
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Arif, M.; Kim, W.; Iqbal, A.; Kim, S.W. Analysis of MCP-Distributed Jammers and 3D Beam-Width Variations for UAV-Assisted C-V2X Millimeter-Wave Communications. Mathematics 2025, 13, 1665. https://doi.org/10.3390/math13101665
Arif M, Kim W, Iqbal A, Kim SW. Analysis of MCP-Distributed Jammers and 3D Beam-Width Variations for UAV-Assisted C-V2X Millimeter-Wave Communications. Mathematics. 2025; 13(10):1665. https://doi.org/10.3390/math13101665
Chicago/Turabian StyleArif, Mohammad, Wooseong Kim, Adeel Iqbal, and Sung Won Kim. 2025. "Analysis of MCP-Distributed Jammers and 3D Beam-Width Variations for UAV-Assisted C-V2X Millimeter-Wave Communications" Mathematics 13, no. 10: 1665. https://doi.org/10.3390/math13101665
APA StyleArif, M., Kim, W., Iqbal, A., & Kim, S. W. (2025). Analysis of MCP-Distributed Jammers and 3D Beam-Width Variations for UAV-Assisted C-V2X Millimeter-Wave Communications. Mathematics, 13(10), 1665. https://doi.org/10.3390/math13101665