• DocumentCode
    3579549
  • Title

    Non-orthogonal compute-and-forward with joint lattice decoding for the multiple-access relay channel

  • Author

    Tzu-Yueh Tseng ; Chung-Pi Lee ; Shih-Chun Lin ; Hsuan-Jung Su

  • Author_Institution
    Grad. Inst. of Commun. Eng., Nat. Taiwan Univ., Taipei, Taiwan
  • fYear
    2014
  • Firstpage
    924
  • Lastpage
    929
  • Abstract
    Relay-aided multiuser communications are crucial for future 5G systems. In this paper, we consider the two-user multiple access relay channel (MARC), in which two users transmit messages to a common destination with the assistance of a half-duplex relay. The decode-and-forward (DF) based lattice coding was shown to be effective for the MARC in our previous work [1]. However when the links from the users to the relay are weak, DF protocol may fail to decode all users at the relay. Aiming to solve this problem, we propose a new lattice coding where the relay only needs to decode an integer-weighted-sum of users´ lattice codewords, re-maps it with a modulo-based mapper and then forwards the corresponding codeword. Although the decoding at the relay is akin to the orthogonal compute-and-forward protocol, we relax the restriction imposed by previous works that the users have to be silent when the relay is transmitting to avoid interference. The key ingredient is the joint multi-user lattice decoding performed at the destination. This jointly decoding strategy not only complicates the corresponding code design but also the error analysis. To find the proper integer-weighted-sum at the relay for the destination´s joint decoder, we also solve a non-convex integer problem by carefully transforming and relaxing it to a convex one. Simulation results show that the proposed non-orthogonal lattice coding can outperform existing schemes in a variety of channel settings.
  • Keywords
    5G mobile communication; concave programming; decode and forward communication; decoding; error analysis; interference suppression; protocols; relay networks (telecommunication); 5G systems; DF; MARC; channel settings; code design; decode-and-forward based lattice coding; decoding strategy; error analysis; half-duplex relay; integer-weighted-sum; interference avoidance; joint lattice decoding; lattice codewords; modulo-based mapper; non-orthogonal compute-and-forward; nonconvex integer problem; orthogonal compute-and-forward protocol; relay-aided multiuser communications; two-user multiple access relay channel; Decoding; Encoding; Error analysis; Joints; Lattices; Protocols; Relays;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Globecom Workshops (GC Wkshps), 2014
  • Type

    conf

  • DOI
    10.1109/GLOCOMW.2014.7063551
  • Filename
    7063551