• DocumentCode
    107138
  • Title

    On the Precoder Design of a Wireless Energy Harvesting Node in Linear Vector Gaussian Channels with Arbitrary Input Distribution

  • Author

    Gregori, Maria ; Payaro, Miquel

  • Author_Institution
    Centre Tecnol. de Telecomunicacions de Catalunya (CTTC), Barcelona, Spain
  • Volume
    61
  • Issue
    5
  • fYear
    2013
  • fDate
    May-13
  • Firstpage
    1868
  • Lastpage
    1879
  • Abstract
    A Wireless Energy Harvesting Node (WEHN) operating in linear vector Gaussian channels with arbitrarily distributed input symbols is considered in this paper. The precoding strategy that maximizes the mutual information along N independent channel accesses is studied under non-causal knowledge of the channel state and harvested energy (commonly known as offline approach). It is shown that, at each channel use, the left singular vectors of the precoder are equal to the eigenvectors of the Gram channel matrix. Additionally, an expression that relates the optimal singular values of the precoder with the energy harvesting profile through the Minimum Mean-Square Error (MMSE) matrix is obtained. Then, the specific situation in which the right singular vectors of the precoder are set to the identity matrix is considered. In this scenario, the optimal offline power allocation, named Mercury Water-Flowing, is derived and an intuitive graphical representation is presented. Two optimal offline algorithms to compute the Mercury Water-Flowing solution are proposed and an exhaustive study of their computational complexity is performed. Moreover, an online algorithm is designed, which only uses causal knowledge of the harvested energy and channel state. Finally, the achieved mutual information is evaluated through simulation.
  • Keywords
    Gaussian channels; channel coding; computational complexity; energy harvesting; least mean squares methods; matrix algebra; precoding; Gram channel matrix eigenvectors; MMSE matrix; Mercury Water-Flowing solution; WEHN; arbitrarily distributed input symbols; channel access; channel state; computational complexity; identity matrix; intuitive graphical representation; linear vector Gaussian channels; minimum mean-square error matrix; optimal offline power allocation; optimal singular values; precoder design; precoder left-singular vectors; precoder right-singular vectors; precoding strategy; wireless energy harvesting node; Batteries; Energy harvesting; Jacobian matrices; Mutual information; Resource management; Transmitters; Vectors; Energy harvesting; MMSE; arbitrary input distribution; linear vector Gaussian channels; mutual information; power allocation; precoder optimization;
  • fLanguage
    English
  • Journal_Title
    Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0090-6778
  • Type

    jour

  • DOI
    10.1109/TCOMM.2013.032013.120577
  • Filename
    6487363