• DocumentCode
    3606728
  • Title

    Optimal Policies for Wireless Networks With Energy Harvesting Transmitters and Receivers: Effects of Decoding Costs

  • Author

    Arafa, Ahmed ; Ulukus, Sennur

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Univ. of Maryland, College Park, MD, USA
  • Volume
    33
  • Issue
    12
  • fYear
    2015
  • Firstpage
    2611
  • Lastpage
    2625
  • Abstract
    We consider the effects of decoding costs in energy-harvesting communication systems. In our setting, receivers, in addition to transmitters, rely solely on energy harvested from nature, and need to spend some energy in order to decode their intended packets. We model the decoding energy as an increasing convex function of the rate of the incoming data. In this setting, in addition to the traditional energy causality constraints at the transmitters, we have the decoding causality constraints at the receivers, where energy spent by the receiver for decoding cannot exceed its harvested energy. We first consider the point-to-point single-user problem where the goal is to maximize the total throughput by a given deadline subject to both energy and decoding causality constraints. We show that decoding costs at the receiver can be represented as generalized data arrivals at the transmitter, and thereby moving all system constraints to the transmitter side. Then, we consider several multiuser settings. We start with a two-hop network where the relay and the destination have decoding costs, and show that separable policies, where the transmitter´s throughput is maximized irrespective of the relay´s transmission energy profile, are optimal. Next, we consider the multiple access channel (MAC) and the broadcast channel (BC) where the transmitters and the receivers harvest energy from nature, and characterize the maximum departure region. In all multiuser settings considered, we decompose our problems into inner and outer problems. We solve the inner problems by exploiting the structure of the particular model, and solve the outer problems by water-filling algorithms.
  • Keywords
    broadcast channels; convex programming; decoding; energy harvesting; radio receivers; radio transmitters; telecommunication power management; broadcast channel; convex function; decoding causality constraints; decoding costs; decoding energy; energy harvesting receivers; energy harvesting transmitters; generalized data arrival; multiple access channel; water filling algorithms; wireless network optimal policies; Convex functions; Decoding; Energy harvesting; Green communications; Receivers; Transmitters; Energy harvesting; decoding causality; decoding costs; energy causality; energy harvesting receivers; energy harvesting transmitters; energy-harvesting receivers; energy-harvesting transmitters; throughput maximization;
  • fLanguage
    English
  • Journal_Title
    Selected Areas in Communications, IEEE Journal on
  • Publisher
    ieee
  • ISSN
    0733-8716
  • Type

    jour

  • DOI
    10.1109/JSAC.2015.2481200
  • Filename
    7274324