A survey on TCP over mmWave
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Yongmao Ren | Bing Liu | Wanghong Yang | Huan Chen | Xu Zhou | Huan Chen | Yongmao Ren | Bing Liu | Wanghong Yang | Xu Zhou
[1] Pei Liu,et al. TCP BBR for Ultra-Low Latency Networking: Challenges, Analysis, and Solutions , 2019, 2019 IFIP Networking Conference (IFIP Networking).
[2] Jeffrey G. Andrews,et al. Modeling and Analyzing Millimeter Wave Cellular Systems , 2016, IEEE Transactions on Communications.
[3] Matteo Drago,et al. Reliable Video Streaming over mmWave with Multi Connectivity and Network Coding , 2017, 2018 International Conference on Computing, Networking and Communications (ICNC).
[4] Toni Janevski,et al. Advanced 5G-TCP: Transport protocol for 5G mobile networks , 2017, 2017 14th IEEE Annual Consumer Communications & Networking Conference (CCNC).
[5] Luca De Cicco,et al. Impact of TCP congestion control on bufferbloat in cellular networks , 2013, 2013 IEEE 14th International Symposium on "A World of Wireless, Mobile and Multimedia Networks" (WoWMoM).
[6] Li Chen,et al. wBBR: A Bottleneck Estimation-Based Congestion Control for Multipath TCP , 2018, 2018 IEEE 88th Vehicular Technology Conference (VTC-Fall).
[7] Bo Ai,et al. Train-to-Infrastructure Channel Modeling and Simulation in MmWave Band , 2019, IEEE Communications Magazine.
[8] Athanasios V. Vasilakos,et al. Exploiting Device-to-Device Communications in Joint Scheduling of Access and Backhaul for mmWave Small Cells , 2015, IEEE Journal on Selected Areas in Communications.
[9] Guo Wei,et al. Improve MPTCP with SDN: From the perspective of resource pooling , 2019, J. Netw. Comput. Appl..
[10] David Ros,et al. On the importance of TCP splitting proxies for future 5G mmWave communications , 2019, 2019 IEEE 44th LCN Symposium on Emerging Topics in Networking (LCN Symposium).
[11] Federico Chiariotti,et al. A Survey on Recent Advances in Transport Layer Protocols , 2018, IEEE Communications Surveys & Tutorials.
[12] Christian Callegari,et al. A Survey of Congestion Control Mechanisms in Linux TCP , 2014 .
[13] Jing Zhu,et al. Will TCP Work in mmWave 5G Cellular Networks? , 2018, IEEE Communications Magazine.
[14] Jong-Moon Chung,et al. Optimal Multipath TCP Offloading Over 5G NR and LTE Networks , 2019, IEEE Wireless Communications Letters.
[15] Sundeep Rangan,et al. Improved Handover Through Dual Connectivity in 5G mmWave Mobile Networks , 2016, IEEE Journal on Selected Areas in Communications.
[16] Greg Chance,et al. Opportunities and Challenges of mmWave NR , 2019, IEEE Wirel. Commun..
[17] Siyoung Choi,et al. Simulation study of TCP proxy in multi-connectivity enabled 5G mmWave network , 2019, 2019 International Conference on Information and Communication Technology Convergence (ICTC).
[18] Byungjun Bae,et al. DL-TCP: Deep Learning-Based Transmission Control Protocol for Disaster 5G mmWave Networks , 2019, IEEE Access.
[19] Xiaoli Ma,et al. Improving TCP Congestion Control with Machine Intelligence , 2018, NetAI@SIGCOMM.
[20] Sungrae Cho,et al. Congestion control vs. link failure: TCP behavior in mmWave connected vehicular networks , 2019, Future Gener. Comput. Syst..
[21] Marwa Chafii,et al. Cross-Layer Multi-User Selection in 5G Heterogeneous Networks Based on Hybrid Beamforming Optimization for Millimeter-Wave , 2019, 2019 IEEE 30th Annual International Symposium on Personal, Indoor and Mobile Radio Communications (PIMRC).
[22] Theodore S. Rappaport,et al. Millimeter Wave Mobile Communications for 5G Cellular: It Will Work! , 2013, IEEE Access.
[23] Miroslav Popovic,et al. MPTCP Is Not Pareto-Optimal: Performance Issues and a Possible Solution , 2013, IEEE/ACM Trans. Netw..
[24] Michele Zorzi,et al. End-to-End Simulation of Integrated Access and Backhaul at mmWaves , 2018, 2018 IEEE 23rd International Workshop on Computer Aided Modeling and Design of Communication Links and Networks (CAMAD).
[25] Yuguang Fang,et al. IEEE 802.11ay-Based mmWave WLANs: Design Challenges and Solutions , 2018, IEEE Communications Surveys & Tutorials.
[26] Harpreet S. Dhillon,et al. Millimeter Wave Integrated Access and Backhaul in 5G: Performance Analysis and Design Insights , 2019, IEEE Journal on Selected Areas in Communications.
[27] Joerg Widmer,et al. Analysis of TCP Performance in 5G mm-Wave Mobile Networks , 2019, ICC 2019 - 2019 IEEE International Conference on Communications (ICC).
[28] Steven H. Low,et al. Multipath TCP: Analysis, Design, and Implementation , 2013, IEEE/ACM Transactions on Networking.
[29] Åke Arvidsson,et al. On the Use of TCP BBR in Cellular Networks , 2018, IEEE Communications Magazine.
[30] Erik G. Larsson,et al. Towards 6G wireless communication networks: vision, enabling technologies, and new paradigm shifts , 2020, Science China Information Sciences.
[31] Sundeep Rangan,et al. Towards 6G Networks: Use Cases and Technologies , 2019, ArXiv.
[32] Christos V. Verikoukis,et al. Next Generation Fiber-Wireless Fronthaul for 5G mmWave Networks , 2019, IEEE Communications Magazine.
[33] Yuguang Fang,et al. Millimeter-Wave Network Architectures for Future High-Speed Railway Communications: Challenges and Solutions , 2016, IEEE Wireless Communications.
[34] Seung-Woo Ko,et al. Exploiting Caching for Millimeter-Wave TCP Networks: Gain Analysis and Practical Design , 2018, IEEE Access.
[35] Sundeep Rangan,et al. End-to-End Simulation of 5G mmWave Networks , 2017, IEEE Communications Surveys & Tutorials.
[36] Anh T. Pham,et al. On the Throughput Performance of TCP Cubic in Millimeter-Wave Cellular Networks , 2019, IEEE Access.
[37] Michele Zorzi,et al. Standalone and Non-Standalone Beam Management for 3GPP NR at mmWaves , 2018, IEEE Communications Magazine.
[38] Athanasios V. Vasilakos,et al. A survey of millimeter wave communications (mmWave) for 5G: opportunities and challenges , 2015, Wireless Networks.
[39] Sundeep Rangan,et al. Frame Structure Design and Analysis for Millimeter Wave Cellular Systems , 2015, IEEE Transactions on Wireless Communications.
[40] Alessandro Andreadis,et al. A cross-layer jitter-based TCP for wireless networks , 2016, EURASIP J. Wirel. Commun. Netw..
[41] Theodore S. Rappaport,et al. Millimeter-Wave Enhanced Local Area Systems: A High-Data-Rate Approach for Future Wireless Networks , 2014, IEEE Journal on Selected Areas in Communications.
[42] Edward W. Knightly,et al. IEEE 802.11ay: Next-Generation 60 GHz Communication for 100 Gb/s Wi-Fi , 2017, IEEE Communications Magazine.
[43] Andreas Kassler,et al. TCP performance over 5G mmWave links — Tradeoff between capacity and latency , 2017, 2017 IEEE 13th International Conference on Wireless and Mobile Computing, Networking and Communications (WiMob).
[44] Rakesh Taori,et al. Point-to-multipoint in-band mmwave backhaul for 5G networks , 2015, IEEE Communications Magazine.
[45] Waleed Meleis,et al. QTCP: Adaptive Congestion Control with Reinforcement Learning , 2019, IEEE Transactions on Network Science and Engineering.
[46] Xiaohu You,et al. AI for 5G: research directions and paradigms , 2018, Science China Information Sciences.
[47] Kenji Kanai,et al. TCP throughput characteristics over 5G millimeterwave network in indoor train station , 2019, 2019 IEEE Wireless Communications and Networking Conference (WCNC).
[48] V. Jacobson,et al. Congestion avoidance and control , 1988, SIGCOMM '88.
[49] Sundeep Rangan,et al. Understanding End-to-End Effects of Channel Dynamics in Millimeter Wave 5G New Radio , 2018, 2018 IEEE 19th International Workshop on Signal Processing Advances in Wireless Communications (SPAWC).
[50] Kyungwhoon Cheun,et al. Millimeter-wave beamforming as an enabling technology for 5G cellular communications: theoretical feasibility and prototype results , 2014, IEEE Communications Magazine.
[51] Theodore S. Rappaport,et al. Overview of Millimeter Wave Communications for Fifth-Generation (5G) Wireless Networks—With a Focus on Propagation Models , 2017, IEEE Transactions on Antennas and Propagation.