A Hybrid Energy Sharing Framework for Green Cellular Networks
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Mohamed-Slim Alouini | Hakim Ghazzai | Abdullah Kadri | Hesham ElSawy | Muhammad Junaid Farooq | Mohamed-Slim Alouini | A. Kadri | Hakim Ghazzai | Hesham Elsawy
[1] Luis Alonso,et al. Energy-efficient infrastructure sharing in multi-operator mobile networks , 2015, IEEE Communications Magazine.
[2] Sumei Sun,et al. Energy cooperation in cellular networks with renewable powered base stations , 2013, 2013 IEEE Wireless Communications and Networking Conference (WCNC).
[3] Alexis Kwasinski,et al. Architecture for green mobile network powered from renewable energy in microgrid configuration , 2013, 2013 IEEE Wireless Communications and Networking Conference (WCNC).
[4] Mohamed-Slim Alouini,et al. Next-Generation Environment-Aware Cellular Networks: Modern Green Techniques and Implementation Challenges , 2016, IEEE Access.
[5] Hakim Ghazzai,et al. A stochastic geometry-based demand response management framework for cellular networks powered by smart grid , 2016, 2016 IEEE Wireless Communications and Networking Conference.
[6] Alexandra von Meier. The Physics of Electricity , 2006 .
[7] Xin-She Yang,et al. Introduction to Algorithms , 2021, Nature-Inspired Optimization Algorithms.
[8] Lajos Hanzo,et al. Green radio: radio techniques to enable energy-efficient wireless networks , 2011, IEEE Communications Magazine.
[9] Narciso F. Macia,et al. Hybrid Microgrid Model Based on Solar Photovoltaic Battery Fuel Cell System for Intermittent Load Applications , 2015, IEEE Transactions on Energy Conversion.
[10] Bhaskar Krishnamachari,et al. Dynamic Base Station Switching-On/Off Strategies for Green Cellular Networks , 2013, IEEE Transactions on Wireless Communications.
[11] Marco Ajmone Marsan,et al. Towards zero grid electricity networking: Powering BSs with renewable energy sources , 2013, 2013 IEEE International Conference on Communications Workshops (ICC).
[12] Gerhard Fettweis,et al. The global footprint of mobile communications: The ecological and economic perspective , 2011, IEEE Communications Magazine.
[13] Xi Fang,et al. 3. Full Four-channel 6.3-gb/s 60-ghz Cmos Transceiver with Low-power Analog and Digital Baseband Circuitry 7. Smart Grid — the New and Improved Power Grid: a Survey , 2022 .
[14] Luis Alonso,et al. Multiobjective Auction-Based Switching-Off Scheme in Heterogeneous Networks: To Bid or Not to Bid? , 2016, IEEE Transactions on Vehicular Technology.
[15] Johann Leithon,et al. Energy exchange among base stations in a Cellular Network through the Smart Grid , 2014, 2014 IEEE International Conference on Communications (ICC).
[16] Alagan Anpalagan,et al. QoS-Aware Energy-Efficient Joint Radio Resource Management in Multi-RAT Heterogeneous Networks , 2016, IEEE Transactions on Vehicular Technology.
[17] Soumitra Dutta and Thierry Geiger and Bruno Lanvin. Global Information Technology Report 2015. ICTs for Inclusive Growth , 2015 .
[18] A. V. Meier. Electric power systems : a conceptual introduction , 2006 .
[19] Biplab Sikdar,et al. Solar powered cellular base stations: current scenario, issues and proposed solutions , 2016, IEEE Communications Magazine.
[20] Vijay K. Bhargava,et al. Green Cellular Networks: A Survey, Some Research Issues and Challenges , 2011, IEEE Communications Surveys & Tutorials.
[21] Mohamed-Slim Alouini,et al. On the Dual-Decomposition-Based Resource and Power Allocation with Sleeping Strategy for Heterogeneous Networks , 2015, 2015 IEEE 81st Vehicular Technology Conference (VTC Spring).
[22] A. Kwasinski,et al. Optimal Configuration Analysis of a Microgrid-Based Telecom Power System , 2006, INTELEC 06 - Twenty-Eighth International Telecommunications Energy Conference.
[23] Jie Xu,et al. Cooperative Energy Trading in CoMP Systems Powered by Smart Grids , 2016, IEEE Transactions on Vehicular Technology.
[24] Peter Xiaoping Liu,et al. When the Smart Grid Meets Energy-Efficient Communications: Green Wireless Cellular Networks Powered by the Smart Grid , 2012, IEEE Transactions on Wireless Communications.
[25] Zhisheng Niu,et al. Toward dynamic energy-efficient operation of cellular network infrastructure , 2011, IEEE Communications Magazine.
[26] Csaba I. Fábián,et al. Solving two-stage stochastic programming problems with level decomposition , 2007, Comput. Manag. Sci..
[27] Fatih Onur Hocaoglu,et al. Novel analytical hourly solar radiation models for photovoltaic based system sizing algorithms , 2010 .
[28] Mohamed-Slim Alouini,et al. Energy Sharing Framework for Microgrid-Powered Cellular Base Stations , 2016, 2016 IEEE Global Communications Conference (GLOBECOM).
[29] Luis Alonso,et al. Game-Theoretic Infrastructure Sharing in Multioperator Cellular Networks , 2016, IEEE Transactions on Vehicular Technology.
[30] Hakim Ghazzai,et al. Optimized Energy Procurement for Cellular Networks Powered by Smart Grid Based on Stochastic Geometry , 2015, 2015 IEEE Globecom Workshops (GC Wkshps).
[31] Johann Leithon,et al. Online energy management strategies for base stations powered by the smart grid , 2013, 2013 IEEE International Conference on Smart Grid Communications (SmartGridComm).
[32] Nirwan Ansari,et al. Energy sharing within EH-enabled wireless communication networks , 2015, IEEE Wireless Communications.
[33] Nirwan Ansari,et al. Powering mobile networks with green energy , 2014, IEEE Wireless Communications.
[34] P. Kall. STOCHASTIC LINEAR PROGRAMMING Models , Theory , and Computation , 2013 .
[35] Johann Leithon,et al. Energy management strategies for base stations powered by the smart grid , 2013, 2013 IEEE Global Communications Conference (GLOBECOM).
[36] Jinsong Wu,et al. Survey of Strategies for Switching Off Base Stations in Heterogeneous Networks for Greener 5G Systems , 2016, IEEE Access.
[37] Jie Xu,et al. Cost-aware green cellular networks with energy and communication cooperation , 2014, IEEE Communications Magazine.