A Multi-tier Communication Scheme for Drone-assisted Disaster Recovery Scenarios
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[1] Jörg Widmer,et al. Survey on Energy Consumption Entities on the Smartphone Platform , 2011, 2011 IEEE 73rd Vehicular Technology Conference (VTC Spring).
[2] Giorgio C. Buttazzo,et al. Energy-Aware Coverage Path Planning of UAVs , 2015, 2015 IEEE International Conference on Autonomous Robot Systems and Competitions.
[3] A. Apte,et al. Stochastic Optimization for Natural Disaster Asset Prepositioning , 2010 .
[4] Sofie Pollin,et al. Micro aerial vehicle networks: an experimental analysis of challenges and opportunities , 2014, IEEE Communications Magazine.
[5] Ian F. Akyildiz,et al. Help from the Sky: Leveraging UAVs for Disaster Management , 2017, IEEE Pervasive Computing.
[6] Lav Gupta,et al. Survey of Important Issues in UAV Communication Networks , 2016, IEEE Communications Surveys & Tutorials.
[7] Mihalis Yannakakis,et al. Optimization, approximation, and complexity classes , 1991, STOC '88.
[8] Michal Król,et al. Wireless Sensor Networks and Multi-UAV systems for natural disaster management , 2017, Comput. Networks.
[9] Rui Zhang,et al. Placement Optimization of UAV-Mounted Mobile Base Stations , 2016, IEEE Communications Letters.
[10] Daniel Camara,et al. Cavalry to the rescue: Drones fleet to help rescuers operations over disasters scenarios , 2014, 2014 IEEE Conference on Antenna Measurements & Applications (CAMA).
[11] Mehdi Bennis,et al. Drone Small Cells in the Clouds: Design, Deployment and Performance Analysis , 2014, GLOBECOM 2014.
[12] Rui Zhang,et al. Wireless communications with unmanned aerial vehicles: opportunities and challenges , 2016, IEEE Communications Magazine.
[13] A. Manjeshwar,et al. TEEN: a routing protocol for enhanced efficiency in wireless sensor networks , 2001, Proceedings 15th International Parallel and Distributed Processing Symposium. IPDPS 2001.
[14] Sergio F. Ochoa,et al. Human-centric wireless sensor networks to improve information availability during urban search and rescue activities , 2015, Inf. Fusion.
[15] Kamesh Namuduri,et al. Aerial Base Stations for Enabling Cellular Communications during Emergency Situation , 2017, 2017 International Conference on Vision, Image and Signal Processing (ICVISP).
[16] Jon Crowcroft,et al. Evaluating opportunistic networks in disaster scenarios , 2013, J. Netw. Comput. Appl..
[17] Shaojie Tang,et al. Recent progress in routing protocols of mobile opportunistic networks: A clear taxonomy, analysis and evaluation , 2016, J. Netw. Comput. Appl..
[18] Mahbub Hassan,et al. Dynamic base station repositioning to improve spectral efficiency of drone small cells , 2017, 2017 IEEE 18th International Symposium on A World of Wireless, Mobile and Multimedia Networks (WoWMoM).
[19] Rui Zhang,et al. Cyclical Multiple Access in UAV-Aided Communications: A Throughput-Delay Tradeoff , 2016, IEEE Wireless Communications Letters.
[20] Nei Kato,et al. Relay-by-smartphone: realizing multihop device-to-device communications , 2014, IEEE Communications Magazine.
[21] Nathalie Mitton,et al. Benchmarking Smartphone Performances for Cooperative Disaster Alert Diffusion , 2018, ADHOC-NOW.
[22] Michel Gendreau,et al. The Covering Tour Problem , 1997, Oper. Res..
[23] Nathalie Mitton,et al. Alternative Opportunistic Alert Diffusion to Support Infrastructure Failure during Disasters , 2017, Sensors.
[24] Carter C. Price,et al. The Close Enough Traveling Salesman Problem: A Discussion of Several Heuristics , 2006 .
[25] Guohong Cao,et al. TeamPhone: Networking SmartPhones for Disaster Recovery , 2016, IEEE Transactions on Mobile Computing.
[26] Marco Aiello,et al. Comparison of energy consumption in Wi-Fi and bluetooth communication in a Smart Building , 2017, 2017 IEEE 7th Annual Computing and Communication Workshop and Conference (CCWC).