Performance analysis of vehicle-to-vehicle communication with full-duplex amplify-and-forward relay over double-Rayleigh fading channels
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[1] Fa-Long Luo,et al. Signal processing for 5G : algorithms and implementations , 2016 .
[2] Taneli Riihonen,et al. Adaptive self-interference cancellation in wideband full-duplex decode-and-forward MIMO relays , 2013, 2013 IEEE 14th Workshop on Signal Processing Advances in Wireless Communications (SPAWC).
[3] Antoine O. Berthet,et al. Full-Duplex Radios for Vehicular Communications , 2017, IEEE Communications Magazine.
[4] F. Haber,et al. A statistical model of mobile-to-mobile land communication channel , 1986, IEEE Transactions on Vehicular Technology.
[5] Jonathan Ling,et al. Comparisons of a Computer-Based Propagation Prediction Tool with Experimental Data Collected in Urban Microcelluar Environments , 1997, IEEE J. Sel. Areas Commun..
[6] Habib Şenol,et al. Channel Estimation for Residual Self-Interference in Full-Duplex Amplify-and-Forward Two-Way Relays , 2017, IEEE Transactions on Wireless Communications.
[7] Sachin Katti,et al. Full duplex radios , 2013, SIGCOMM.
[8] Xuan Nam Tran,et al. Performance analysis of in-band full-duplex amplify-and-forward relay system with direct link , 2018, 2018 2nd International Conference on Recent Advances in Signal Processing, Telecommunications & Computing (SigTelCom).
[9] Dong Ku Kim,et al. Interference Management for In-Band Full-Duplex Vehicular Access Networks , 2018, IEEE Transactions on Vehicular Technology.
[10] Omid Abbasi,et al. Cooperative NOMA with full‐duplex amplify‐and‐forward relaying , 2018, Trans. Emerg. Telecommun. Technol..
[11] Aashish Mathur,et al. On Physical Layer Security of Double Rayleigh Fading Channels for Vehicular Communications , 2018, IEEE Wireless Communications Letters.
[12] Geng Wu,et al. 5G Network Capacity: Key Elements and Technologies , 2014, IEEE Vehicular Technology Magazine.
[13] I. S. Gradshteyn,et al. Table of Integrals, Series, and Products , 1976 .
[14] Tran Manh Hoang,et al. Optimizing duration of energy harvesting for downlink NOMA full-duplex over Nakagami-m fading channel , 2018 .
[15] Tran Trung Duy,et al. Outage performance of cognitive cooperative networks with relay selection over double-Rayleigh fading channels , 2016, IET Commun..
[16] Andrea Conti,et al. Relay-Assisted Diversity Communications , 2013, IEEE Transactions on Vehicular Technology.
[17] Barbara M. Masini,et al. Relay Selection Analysis for an Opportunistic Two-Hop Multi-User System in a Poisson Field of Nodes , 2017, IEEE Transactions on Wireless Communications.
[18] Nelson Costa,et al. Multiple-input-multiple-output measurements and modeling in Manhattan , 2003, IEEE J. Sel. Areas Commun..
[19] Yi Wang,et al. Dual-Band Full-Duplex Tx/Rx Antennas for Vehicular Communications , 2018, IEEE Transactions on Vehicular Technology.
[20] Philip Levis,et al. Applications of self-interference cancellation in 5G and beyond , 2014, IEEE Communications Magazine.
[21] Lajos Hanzo,et al. Performance Analysis of NOMA-SM in Vehicle-to-Vehicle Massive MIMO Channels , 2017, IEEE Journal on Selected Areas in Communications.
[22] Lingyang Song,et al. Efficient Full-Duplex Relaying With Joint Antenna-Relay Selection and Self-Interference Suppression , 2015, IEEE Transactions on Wireless Communications.
[23] Jung-Min Park,et al. IEEE 802.11bd & 5G NR V2X: Evolution of Radio Access Technologies for V2X Communications , 2019, IEEE Access.
[24] Antoine O. Berthet,et al. Enhancing Cooperative Driving in IEEE 802.11 Vehicular Networks Through Full-Duplex Radios , 2018, IEEE Transactions on Wireless Communications.
[25] Risto Wichman,et al. In-Band Full-Duplex Wireless: Challenges and Opportunities , 2013, IEEE Journal on Selected Areas in Communications.
[26] Milton Abramowitz,et al. Handbook of Mathematical Functions with Formulas, Graphs, and Mathematical Tables , 1964 .
[27] I. S. Ansari,et al. Secrecy Capacity Analysis Over $\alpha - \mu $ Fading Channels , 2017, IEEE Communications Letters.
[28] Chee Yen Leow,et al. Full-Duplex Cooperative Non-Orthogonal Multiple Access With Beamforming and Energy Harvesting , 2018, IEEE Access.
[29] Xuan Nam Tran,et al. Outage Probability of Two-Way Full-Duplex Relay System With Hardware Impairments , 2019, 2019 3rd International Conference on Recent Advances in Signal Processing, Telecommunications & Computing (SigTelCom).
[30] Jingxian Wu,et al. Performance Analysis of Wireless Systems With Doubly Selective Rayleigh Fading , 2007, IEEE Transactions on Vehicular Technology.
[31] Vuk Marojevic,et al. Performance Analysis of Sensing-Based Semi-Persistent Scheduling in C-V2X Networks , 2018, 2018 IEEE 88th Vehicular Technology Conference (VTC-Fall).
[32] Phuong T. Tran,et al. Performance analysis of full-duplex decode-and-forward relay system with energy harvesting over Nakagami-m fading channels , 2019, AEU - International Journal of Electronics and Communications.
[33] Murat Uysal,et al. Relay Selection in Dual-Hop Vehicular Networks , 2011, IEEE Signal Processing Letters.
[34] Taneli Riihonen,et al. Full-duplex amplify-and-forward relays with optimized transmission power under imperfect transceiver electronics , 2017, EURASIP J. Wirel. Commun. Netw..
[35] Sherali Zeadally,et al. Interference-Aided Vehicular Networks: Future Research Opportunities and Challenges , 2018, IEEE Communications Magazine.
[36] Subir Biswas,et al. Vehicle-to-vehicle wireless communication protocols for enhancing highway traffic safety , 2006, IEEE Communications Magazine.
[37] Patrick Claus F. Eggers,et al. Investigations of outdoor-to-indoor mobile-to-mobile radio communication channels , 2002, Proceedings IEEE 56th Vehicular Technology Conference.
[38] Cheng Li,et al. Outage Analysis of the Full-Duplex Decode-and-Forward Two-Way Relay System , 2017, IEEE Transactions on Vehicular Technology.
[39] Andrea Goldsmith,et al. Wireless Communications , 2005, 2021 15th International Conference on Advanced Technologies, Systems and Services in Telecommunications (TELSIKS).