• DocumentCode
    718003
  • Title

    Polynomial-based compressing and iterative expanding for PAPR reduction in GFDM

  • Author

    Sharifian, Zahra ; Omidi, Mohammad Javad ; Farhang, Arman ; Saeedi-Sourck, Hamid

  • Author_Institution
    Isfahan Univ. of Technol., Isfahan, Iran
  • fYear
    2015
  • fDate
    10-14 May 2015
  • Firstpage
    518
  • Lastpage
    523
  • Abstract
    GFDM (generalized frequency division multiplexing) is a non-orthogonal waveform that is being discussed as a candidate for the fifth generation of wireless communication systems (5G). GFDM is a multicarrier technique with circular pulse shaping that is designed in a way to address emerging applications in 5G networks such as Internet of Things (IoT) and machine-to-machine communications (M2M). The same as other multicarrier systems, GFDM suffers from a high peak to average power ratio (PAPR). To attack PAPR problem, in this paper, we propose a polynomial based companding method with iterative expansion that is called polynomial-based companding technique (PCT). Based on our simulation results, a great amount of PAPR reduction can be achieved through utilization of our proposed technique. Through simulations, we have also investigated the bit error rate (BER) performance of the system while adopting our PCT method. Our simulations reveal that there is a tradeoff between PAPR reduction and BER performance.
  • Keywords
    5G mobile communication; Internet of Things; compandors; compressed sensing; error statistics; frequency division multiplexing; iterative methods; polynomials; pulse shaping; 5G networks; BER; GFDM; Internet of Things; IoT; M2M; PAPR reduction; PCT method; bit error rate; circular pulse shaping; generalized frequency division multiplexing; iterative expansion; machine-to-machine communications; multicarrier systems; multicarrier technique; nonorthogonal waveform; peak to average power ratio; polynomial based companding method; polynomial-based companding technique; polynomial-based compressing; wireless communication systems; Bit error rate; Modulation; Peak to average power ratio; Pulse shaping methods; Receivers; Transmitters; GFDM; PAPR; PCT method; companding;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Electrical Engineering (ICEE), 2015 23rd Iranian Conference on
  • Conference_Location
    Tehran
  • Print_ISBN
    978-1-4799-1971-0
  • Type

    conf

  • DOI
    10.1109/IranianCEE.2015.7146271
  • Filename
    7146271