Result: Cost Minimization for Fading Channels With Energy Harvesting and Conventional Energy

Title:
Cost Minimization for Fading Channels With Energy Harvesting and Conventional Energy
Source:
IEEE transactions on wireless communications. 13(8):4586-4598
Publisher Information:
New York, NY: Institute of Electrical and Electronics Engineers, 2014.
Publication Year:
2014
Physical Description:
print, 30 ref
Original Material:
INIST-CNRS
Subject Terms:
Telecommunications, Télécommunications, Sciences exactes et technologie, Exact sciences and technology, Sciences appliquees, Applied sciences, Telecommunications et theorie de l'information, Telecommunications and information theory, Télécommunications, Telecommunications, Systèmes, réseaux et services de télécommunications, Systems, networks and services of telecommunications, Transmission et modulation (techniques et équipements), Transmission and modulation (techniques and equipments), Gestion ressources, Resource management, Gestión recursos, Algorithme optimal, Optimal algorithm, Algoritmo óptimo, Alimentation électrique, Power supply, Alimentación eléctrica, Allocation optimale, Optimal allocation, Asignación óptima, Allocation ressource, Resource allocation, Asignación recurso, Borne inférieure, Lower bound, Cota inferior, Canal évanouissement, Fading channels, Causalité, Causality, Causalidad, Evanouissement, Fading, Desvanecimiento, Gain puissance, Power gain, Aumento potencia, Indisponibilité, Outage, Indisponibilidad, Minimisation coût, Cost minimization, Minimización costo, Optimisation, Optimization, Optimización, Programmation linéaire, Linear programming, Programación lineal, Programmation non convexe, Non convex programming, Programación no convexa, Programmation partiellement en nombres entiers, Mixed integer programming, Programación mixta entera, Relaxation, Relajación, Système hybride, Hybrid system, Sistema híbrido, Système télécommunication, Telecommunication system, Sistema telecomunicación, Télécommunication sans fil, Wireless telecommunication, Telecomunicación sin hilo, Energy harvesting, block fading channels, green wireless communications, hybrid power supply, mixed-integer programming, non-convex optimization, optimal resource allocation
Document Type:
Academic journal Article
File Description:
text
Language:
English
Author Affiliations:
Institute of Infocomm Research, Singapore 138632, Singapore
ISSN:
1536-1276
Rights:
Copyright 2015 INIST-CNRS
CC BY 4.0
Sauf mention contraire ci-dessus, le contenu de cette notice bibliographique peut être utilisé dans le cadre d’une licence CC BY 4.0 Inist-CNRS / Unless otherwise stated above, the content of this bibliographic record may be used under a CC BY 4.0 licence by Inist-CNRS / A menos que se haya señalado antes, el contenido de este registro bibliográfico puede ser utilizado al amparo de una licencia CC BY 4.0 Inist-CNRS
Notes:
Telecommunications and information theory
Accession Number:
edscal.28807218
Database:
PASCAL Archive

Further Information

In this paper, we investigate resource allocation strategies for a point-to-point wireless communications system with hybrid energy sources consisting of an energy harvester and a conventional energy source. In particular, as an incentive to promote the use of renewable energy, we assume that the renewable energy has a lower cost than the conventional energy. Then, by assuming that the non-causal information of the energy arrivals and the channel power gains are available, we minimize the total energy cost of such a system over N fading slots under a proposed outage constraint together with the energy harvesting constraints. The outage constraint requires a minimum fixed number of slots to be reliably decoded, and thus leads to a mixed-integer programming formulation for the optimization problem. This constraint is useful, for example, if an outer code is used to recover all the data bits. Optimal linear time algorithms are obtained for two extreme cases, i.e., the number of outage slot is 1 or N — 1. For the general case, a lower bound based on the linear programming relaxation, and two suboptimal algorithms are proposed. It is shown that the proposed suboptimal algorithms exhibit only a small gap from the lower bound. We then extend the proposed algorithms to the multi-cycle scenario in which the outage constraint is imposed for each cycle separately. Finally, we investigate the resource allocation strategies when only causal information on the energy arrivals and only channel statistics is available. It is shown that the greedy energy allocation is optimal for this scenario.