Accès libre

Research on Channel Modeling of UAV Based on Artificial Intelligence Reflective Surface

   | 05 août 2024
À propos de cet article

Citez

Liu, Q., Sun, S., Rong, B., & Kadoch, M. (2021). Intelligent reflective surface based 6G communications for sustainable energy infrastructure. IEEE Wireless Communications, 28(6), 49-55. Search in Google Scholar

Chen, M. K., Liu, X., Sun, Y., & Tsai, D. P. (2022). Artificial intelligence in meta-optics. Chemical Reviews, 122(19), 15356-15413. Search in Google Scholar

Zhang, Q., Saad, W., & Bennis, M. (2019, December). Reflections in the sky: Millimeter wave communication with UAV-carried intelligent reflectors. In 2019 IEEE Global Communications Conference (GLOBECOM) (pp. 1-6). IEEE. Search in Google Scholar

Long, W., Chen, R., Moretti, M., Zhang, W., & Li, J. (2021). A promising technology for 6G wireless networks: Intelligent reflecting surface. Journal of Communications and Information Networks, 6(1), 1-16. Search in Google Scholar

Roberge, V., Tarbouchi, M., & Labonté, G. (2018). Fast genetic algorithm path planner for fixed-wing military UAV using GPU. IEEE Transactions on Aerospace and Electronic Systems, 54(5), 2105-2117. Search in Google Scholar

Zhai, Q., & Ye, Z. S. (2020). How reliable should military UAVs be?. IISE Transactions, 52(11), 1234-1245. Search in Google Scholar

Liu, Y., Wang, C. X., Chang, H., He, Y., & Bian, J. (2021). A novel non-stationary 6G UAV channel model for maritime communications. IEEE Journal on Selected Areas in Communications, 39(10), 2992-3005. Search in Google Scholar

Chaturvedi, S. K., Sekhar, R., Banerjee, S., & Kamal, H. (2019). Comparative review study of military and civilian unmanned aerial vehicles (UAVs). INCAS bulletin, 11(3), 181-182. Search in Google Scholar

Dabiri, M. T., Sadough, S. M. S., & Khalighi, M. A. (2018). Channel modeling and parameter optimization for hovering UAV-based free-space optical links. IEEE Journal on Selected Areas in Communications, 36(9), 2104-2113. Search in Google Scholar

Nawaz, H., Ali, H. M., & Laghari, A. A. (2021). UAV communication networks issues: A review. Archives of Computational Methods in Engineering, 28(3), 1349-1369. Search in Google Scholar

Mozaffari, M., Saad, W., Bennis, M., & Debbah, M. (2017). Mobile unmanned aerial vehicles (UAVs) for energy-efficient Internet of Things communications. IEEE Transactions on Wireless Communications, 16(11), 7574-7589. Search in Google Scholar

Zhou, Y., Pan, C., Yeoh, P. L., Wang, K., Elkashlan, M., Vucetic, B., & Li, Y. (2019). Secure communications for UAV-enabled mobile edge computing systems. IEEE Transactions on Communications, 68(1), 376-388. Search in Google Scholar

Sejan, M. A. S., Rahman, M. H., Shin, B. S., Oh, J. H., You, Y. H., & Song, H. K. (2022). Machine learning for intelligent-reflecting-surface-based wireless communication towards 6G: A review. Sensors, 22(14), 5405. Search in Google Scholar

Cheng, X., Li, Y., & Bai, L. (2019). UAV communication channel measurement, modeling, and application. Journal of Communications and Information Networks, 4(4), 32-43. Search in Google Scholar

Khuwaja, A. A., Chen, Y., Zhao, N., Alouini, M. S., & Dobbins, P. (2018). A survey of channel modeling for UAV communications. IEEE Communications Surveys & Tutorials, 20(4), 2804-2821. Search in Google Scholar

Yan, C., Fu, L., Zhang, J., & Wang, J. (2019). A comprehensive survey on UAV communication channel modeling. IEEE Access, 7, 107769-107792. Search in Google Scholar

Bithas, P. S., Nikolaidis, V., Kanatas, A. G., & Karagiannidis, G. K. (2020). UAV-to-ground communications: Channel modeling and UAV selection. IEEE Transactions on Communications, 68(8), 5135-5144. Search in Google Scholar

Khawaja, W., Guvenc, I., Matolak, D. W., Fiebig, U. C., & Schneckenburger, N. (2019). A survey of airto-ground propagation channel modeling for unmanned aerial vehicles. IEEE Communications Surveys & Tutorials, 21(3), 2361-2391. Search in Google Scholar

Kang Lin,Wang Jie,Chen Junjie & Yang Di.(2024).Resource allocation in vehicular network based on sparrow search algorithm and hyper-graph in the presence of multiple cellular users.International Journal of Intelligent Computing and Cybernetics(2),415-435. Search in Google Scholar

Pashintsev V.P.,Peskov M.V.,Kiselev N.V.,Mikhailov D.A. & Dukhovnyi D.V..(2023).Analysis of noise immunity of satellite communications under small-scale ionospheric disturbances and time-selective fading of received signals.The Egyptian Journal of Remote Sensing and Space Sciences(4),1036-1045. Search in Google Scholar

Chongyang Li & Xiaohu Qiang.(2024).Advancing reliability and efficiency of urban communication: Unmanned aerial vehicles, intelligent reflection surfaces, and deep learning techniques.Heliyon(11), e32472-. Search in Google Scholar

Dang Jian,Gao Shicheng,Zhu Yongdong,Guo Rongbin,Jiang Hao,Zhang Zaichen... & Wang Lei.(2020).A geometry‐based stochastic channel model and its application for intelligent reflecting surface assisted wireless communication.IET Communications(3), 421-434. Search in Google Scholar

Elsayed Ebrahim E.(2024).Investigations on OFDM UAV-based free-space optical transmission system with scintillation mitigation for optical wireless communication-to-ground links in atmospheric turbulence.Optical and Quantum Electronics(5), Search in Google Scholar

eISSN:
2444-8656
Langue:
Anglais
Périodicité:
Volume Open
Sujets de la revue:
Life Sciences, other, Mathematics, Applied Mathematics, General Mathematics, Physics