• DocumentCode
    54614
  • Title

    Spatial Modulation Aided Zero-Padded Single Carrier Transmission for Dispersive Channels

  • Author

    Rajashekar, R. ; Hari, K.V.S. ; Hanzo, Lajos

  • Author_Institution
    Dept. of Electr. Commun. Eng., Indian Inst. of Sci., Bangalore, India
  • Volume
    61
  • Issue
    6
  • fYear
    2013
  • fDate
    Jun-13
  • Firstpage
    2318
  • Lastpage
    2329
  • Abstract
    In this paper, we consider spatial modulation (SM) operating in a frequency-selective single-carrier (SC) communication scenario and propose zero-padding instead of the cyclic-prefix considered in the existing literature. We show that the zero-padded single-carrier (ZP-SC) SM system offers full multipath diversity under maximum-likelihood (ML) detection, unlike the cyclic-prefix based SM system. Furthermore, we show that the order of ML detection complexity in our proposed ZP-SC SM system is independent of the frame length and depends only on the number of multipath links between the transmitter and the receiver. Thus, we show that the zero-padding applied in the SC SM system has two advantages over the cyclic prefix: 1) achieves full multipath diversity, and 2) imposes a relatively low ML detection complexity. Furthermore, we extend the partial interference cancellation receiver (PIC-R) proposed by Guo and Xia for the detection of space-time block codes (STBCs) in order to convert the ZP-SC system into a set of narrowband subsystems experiencing flat-fading. We show that full rank STBC transmissions over these subsystems achieves full transmit, receive as well as multipath diversity for the PIC-R. Furthermore, we show that the ZP-SC SM system achieves receive and multipath diversity for the PIC-R at a detection complexity order which is the same as that of the SM system in flat-fading scenario. Our simulation results demonstrate that the symbol error ratio performance of the proposed linear receiver for the ZP-SC SM system is significantly better than that of the SM in cyclic prefix based orthogonal frequency division multiplexing as well as of the SM in the cyclic-prefixed and zero-padded single carrier systems relying on zero-forcing/minimum mean-squared error equalizer based receivers.
  • Keywords
    OFDM modulation; channel coding; cyclic codes; dispersive channels; diversity reception; equalisers; fading channels; interference suppression; least mean squares methods; linear codes; maximum likelihood detection; multipath channels; radio receivers; radio transmitters; radiofrequency interference; space-time block codes; ML; PIC-R; SM; ZP-SC; cyclic-prefix system; dispersive channel; flat-fading narrowband channel subsystem; frame length; full rank STBC transmission; linear receiver; maximum-likelihood detection; multipath diversity link; orthogonal frequency division multiplexing; partial interference cancellation receiver; space-time block code detection; spatial modulation; symbol error ratio; transmitter; zero-forcing-minimum mean-squared error equalizer based receiver; zero-padded frequency-selective single-carrier communication; Complexity theory; Decoding; Modulation; Receiving antennas; Transmitting antennas; Vectors; Spatial modulation; decoding complexity; diversity; partial interference cancellation; zero padded single carrier communication;
  • fLanguage
    English
  • Journal_Title
    Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0090-6778
  • Type

    jour

  • DOI
    10.1109/TCOMM.2013.043013.130011
  • Filename
    6514972