• DocumentCode
    1761948
  • Title

    5GNOW: non-orthogonal, asynchronous waveforms for future mobile applications

  • Author

    Wunder, Gerhard ; Jung, Peter ; Kasparick, Martin ; Wild, Thorsten ; Schaich, Frank ; Yejian Chen ; Brink, Stephen ; Gaspar, Ivan ; Michailow, Nicola ; Festag, Andreas ; Mendes, L. ; Cassiau, Nicolas ; Ktenas, Dimitri ; Dryjanski, Marcin ; Pietrzyk, Slawo

  • Volume
    52
  • Issue
    2
  • fYear
    2014
  • fDate
    41671
  • Firstpage
    97
  • Lastpage
    105
  • Abstract
    This article provides some fundamental indications about wireless communications beyond LTE/LTE-A (5G), representing the key findings of the European research project 5GNOW. We start with identifying the drivers for making the transition to 5G networks. Just to name one, the advent of the Internet of Things and its integration with conventional human-initiated transmissions creates a need for a fundamental system redesign. Then we make clear that the strict paradigm of synchronism and orthogonality as applied in LTE prevents efficiency and scalability. We challenge this paradigm and propose new key PHY layer technology components such as a unified frame structure, multicarrier waveform design including a filtering functionality, sparse signal processing mechanisms, a robustness framework, and transmissions with very short latency. These components enable indeed an efficient and scalable air interface supporting the highly varying set of requirements originating from the 5G drivers.
  • Keywords
    Internet of Things; Long Term Evolution; synchronisation; waveform analysis; 5G drivers; 5G networks; 5GNOW; European research project; Internet of Things; PHY layer technology; asynchronous waveforms; beyond LTE/LTE-A; fundamental system redesign; future mobile applications; latency; multicarrier waveform design; orthogonality; synchronisation; transmission integration; unified frame structure; wireless communications; Computer architecture; Internet; Long Term Evolution; Microprocessors; Mobile communication; Next generation networking; OFDM; Real-time systems; Wireless communication;
  • fLanguage
    English
  • Journal_Title
    Communications Magazine, IEEE
  • Publisher
    ieee
  • ISSN
    0163-6804
  • Type

    jour

  • DOI
    10.1109/MCOM.2014.6736749
  • Filename
    6736749