3-D Dynamic UAV Base Station Location Problem
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[1] Rui Zhang,et al. Energy-Efficient Data Collection in UAV Enabled Wireless Sensor Network , 2017, IEEE Wireless Communications Letters.
[2] G. F. Newell. Dispatching Policies for a Transportation Route , 1971 .
[3] Halim Yanikomeroglu,et al. Efficient 3D aerial base station placement considering users mobility by reinforcement learning , 2018, 2018 IEEE Wireless Communications and Networking Conference (WCNC).
[4] Ismail Guvenc,et al. Improved Throughput Coverage in Natural Disasters: Unmanned Aerial Base Stations for Public-Safety Communications , 2016, IEEE Vehicular Technology Magazine.
[5] Walid Saad,et al. Mobile Unmanned Aerial Vehicles (UAVs) for Energy-Efficient Internet of Things Communications , 2017, IEEE Transactions on Wireless Communications.
[6] Halim Yanikomeroglu,et al. User association and bandwidth allocation for terrestrial and aerial base stations with backhaul considerations , 2017, 2017 IEEE 28th Annual International Symposium on Personal, Indoor, and Mobile Radio Communications (PIMRC).
[7] Carlos F. Daganzo,et al. Logistics Systems Analysis , 1991 .
[8] Vedat Verter,et al. A continuous model for production-distribution system design , 2001, Eur. J. Oper. Res..
[9] David W. Matolak,et al. A Survey of Air-to-Ground Propagation Channel Modeling for Unmanned Aerial Vehicles , 2018, IEEE Communications Surveys & Tutorials.
[10] Monica Gentili,et al. Locating sensors on traffic networks: Models, challenges and research opportunities , 2012 .
[11] Jaeyoung Cho,et al. Drone-Aided Healthcare Services for Patients with Chronic Diseases in Rural Areas , 2017, J. Intell. Robotic Syst..
[12] R. Horst,et al. DC Programming: Overview , 1999 .
[13] Wenjun Xu,et al. Joint Trajectory Optimization and User Scheduling for Rotary-Wing UAV-Enabled Wireless Powered Communication Networks , 2019, IEEE Access.
[14] Victor C. M. Leung,et al. How Do Non-Ideal UAV Antennas Affect Air-to-Ground Communications? , 2019, ICC 2019 - 2019 IEEE International Conference on Communications (ICC).
[15] Halim Yanikomeroglu,et al. On the Number and 3D Placement of Drone Base Stations in Wireless Cellular Networks , 2016, 2016 IEEE 84th Vehicular Technology Conference (VTC-Fall).
[16] Evsen Yanmaz,et al. Survey on Unmanned Aerial Vehicle Networks for Civil Applications: A Communications Viewpoint , 2016, IEEE Communications Surveys & Tutorials.
[17] Qingqing Wu,et al. Accessing From the Sky: A Tutorial on UAV Communications for 5G and Beyond , 2019, Proceedings of the IEEE.
[18] Gilbert Laporte,et al. Ambulance location and relocation models , 2000, Eur. J. Oper. Res..
[19] John Wensowitch,et al. Experimental Evaluation of Antenna Polarization and Elevation Effects on Drone Communications , 2019, MSWiM.
[20] Mahbub Hassan,et al. Dynamic Base Station Repositioning to Improve Performance of Drone Small Cells , 2016, 2016 IEEE Globecom Workshops (GC Wkshps).
[21] Ian F. Akyildiz,et al. Help from the Sky: Leveraging UAVs for Disaster Management , 2017, IEEE Pervasive Computing.
[22] Rui Zhang,et al. Wireless communications with unmanned aerial vehicles: opportunities and challenges , 2016, IEEE Communications Magazine.
[23] Ivo Nowak,et al. Relaxation and Decomposition Methods for Mixed Integer Nonlinear Programming , 2005 .
[24] Halim Yanikomeroglu,et al. The New Frontier in RAN Heterogeneity: Multi-Tier Drone-Cells , 2016, IEEE Communications Magazine.
[25] Halim Yanikomeroglu,et al. Spatial Configuration of Agile Wireless Networks With Drone-BSs and User-in-the-loop , 2018, IEEE Transactions on Wireless Communications.
[26] Hakan Gultekin,et al. The location-allocation problem of drone base stations , 2019, Comput. Oper. Res..
[27] Jie Xu,et al. Energy Minimization for Wireless Communication With Rotary-Wing UAV , 2018, IEEE Transactions on Wireless Communications.
[28] Zvi Drezner,et al. Generalized coverage: New developments in covering location models , 2010, Comput. Oper. Res..
[29] Yanfeng Ouyang,et al. Reliable Facility Location Design Under the Risk of Disruptions , 2010, Oper. Res..
[30] Chase C. Murray,et al. The flying sidekick traveling salesman problem: Optimization of drone-assisted parcel delivery , 2015 .
[31] Liang Liu,et al. Towards Reliable UAV Swarm Communication in D2D-Enhanced Cellular Networks , 2020, IEEE Transactions on Wireless Communications.
[32] Zhiyong Feng,et al. Backhaul-Aware Trajectory Optimization of Fixed-Wing UAV-Mounted Base Station for Continuous Available Wireless Service , 2020, IEEE Access.
[33] Vijay Kumar,et al. Energetics in robotic flight at small scales , 2017, Interface Focus.
[34] Bruce L. Golden,et al. Optimization approaches for civil applications of unmanned aerial vehicles (UAVs) or aerial drones: A survey , 2018, Networks.
[35] Rui Zhang,et al. Placement Optimization of UAV-Mounted Mobile Base Stations , 2016, IEEE Communications Letters.
[36] Xin Wang,et al. A Continuum Approximation Approach to the Dynamic Facility Location Problem in a Growing Market , 2017, Transp. Sci..
[37] Yanfeng Ouyang,et al. A Continuum Approximation Approach to Competitive Facility Location Design Under Facility Disruption Risks , 2013 .
[38] Zhilu Wu,et al. Trajectory and Communication Design for UAV-Relayed Wireless Networks , 2019, IEEE Wireless Communications Letters.
[39] Lav Gupta,et al. Survey of Important Issues in UAV Communication Networks , 2016, IEEE Communications Surveys & Tutorials.
[40] Richard L. Church,et al. The maximal covering location problem , 1974 .
[41] Halim Yanikomeroglu,et al. 3-D Placement of an Unmanned Aerial Vehicle Base Station for Maximum Coverage of Users With Different QoS Requirements , 2017, IEEE Wireless Communications Letters.
[42] Halim Yanikomeroglu,et al. Backhaul-aware robust 3D drone placement in 5G+ wireless networks , 2017, 2017 IEEE International Conference on Communications Workshops (ICC Workshops).
[43] Claudio Casetti,et al. Planning UAV Activities for Efficient User Coverage in Disaster Areas , 2018, Ad Hoc Networks.
[44] Yanfeng Ouyang,et al. Discretization and Validation of the Continuum Approximation Scheme for Terminal System Design , 2003, Transp. Sci..
[45] Yanfeng Ouyang,et al. Advancements in continuous approximation models for logistics and transportation systems: 1996–2016 , 2017, 1706.05448.
[46] Marshall L. Fisher,et al. The Lagrangian Relaxation Method for Solving Integer Programming Problems , 2004, Manag. Sci..
[47] Giorgio C. Buttazzo,et al. Energy-Aware Coverage Path Planning of UAVs , 2015, 2015 IEEE International Conference on Autonomous Robot Systems and Competitions.
[48] Shuowen Zhang,et al. Cellular-Enabled UAV Communication: A Connectivity-Constrained Trajectory Optimization Perspective , 2018, IEEE Transactions on Communications.
[49] Walid Saad,et al. Efficient Deployment of Multiple Unmanned Aerial Vehicles for Optimal Wireless Coverage , 2016, IEEE Communications Letters.
[50] Shawn T Brown,et al. The economic and operational value of using drones to transport vaccines. , 2016, Vaccine.
[51] Jean-François Cordeau,et al. Benders decomposition for very large scale partial set covering and maximal covering location problems , 2019, Eur. J. Oper. Res..
[52] Mehdi Bennis,et al. UAV-Assisted Heterogeneous Networks for Capacity Enhancement , 2016, IEEE Communications Letters.
[53] Jorge J. Moré,et al. The NEOS Server , 1998 .
[54] Miguel A. Figliozzi,et al. Maximum coverage capacitated facility location problem with range constrained drones , 2019, Transportation Research Part C: Emerging Technologies.
[55] Chadi Assi,et al. Autonomous UAV Trajectory for Localizing Ground Objects: A Reinforcement Learning Approach , 2020, IEEE Transactions on Mobile Computing.
[56] Jie Xu,et al. UAV-Enabled Wireless Power Transfer: Trajectory Design and Energy Optimization , 2017, IEEE Transactions on Wireless Communications.
[57] Pascal Morin,et al. Modeling and Energy Evaluation of Small Convertible UAVs , 2013 .
[58] Halim Yanikomeroglu,et al. Airborne Communication Networks: A Survey , 2018, IEEE Journal on Selected Areas in Communications.
[59] Bin Li,et al. UAV Communications for 5G and Beyond: Recent Advances and Future Trends , 2019, IEEE Internet of Things Journal.
[60] Bülent Tavli,et al. UAV Base Station Location Optimization for Next Generation Wireless Networks: Overview and Future Research Directions , 2018, 2019 1st International Conference on Unmanned Vehicle Systems-Oman (UVS).
[61] Mehdi Bennis,et al. Drone Small Cells in the Clouds: Design, Deployment and Performance Analysis , 2014, GLOBECOM 2014.
[62] Chi Harold Liu,et al. Energy-Efficient UAV Control for Effective and Fair Communication Coverage: A Deep Reinforcement Learning Approach , 2018, IEEE Journal on Selected Areas in Communications.
[63] Qingqing Wu,et al. Securing UAV Communications via Joint Trajectory and Power Control , 2018, IEEE Transactions on Wireless Communications.
[64] Zhe Wang,et al. Adaptive Deployment for UAV-Aided Communication Networks , 2018, IEEE Transactions on Wireless Communications.
[65] Kandeepan Sithamparanathan,et al. Optimal LAP Altitude for Maximum Coverage , 2014, IEEE Wireless Communications Letters.
[66] Qingquan Li,et al. Optimizing the Locations of Electric Taxi Charging Stations: a Spatial-temporal Demand Coverage Approach , 2016 .
[67] Ran Wei,et al. Locating AED Enabled Medical Drones to Enhance Cardiac Arrest Response Times , 2016, Prehospital emergency care : official journal of the National Association of EMS Physicians and the National Association of State EMS Directors.
[68] Alan T. Murray. Maximal Coverage Location Problem , 2016 .
[69] Mark Goh,et al. Covering problems in facility location: A review , 2012, Comput. Ind. Eng..
[70] Rui Zhang,et al. Energy-Efficient UAV Communication With Trajectory Optimization , 2016, IEEE Transactions on Wireless Communications.
[71] Wenchao Xu,et al. Multiple Drone-Cell Deployment Analyses and Optimization in Drone Assisted Radio Access Networks , 2018, IEEE Access.