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[Keyword] SFBC(8hit)

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  • Frequency-Domain Differential Coding Schemes under Frequency-Selective Fading Environment in Adaptive Baseband Radio

    Jin NAKAZATO  Daiki OKUYAMA  Yuki MORIMOTO  Yoshio KARASAWA  

     
    PAPER-Wireless Communication Technologies

      Vol:
    E99-B No:2
      Page(s):
    488-498

    In our previous paper, we presented a concept of “Baseband Radio” as an ideal of future wireless communication scheme. Furthermore, for enhancing the adaptability of baseband radio, the adaptive baseband radio was discussed as the ultimate communication system; it integrates the functions of cognitive radio and software-defined radio. In this paper, two transmission schemes that take advantage of adaptive baseband radio are introduced and the results of a performance evaluation are presented. The first one is a scheme based on DSFBC for realizing higher reliability; it allows the flexible use of frequency bands over a wide range of white space. The second one is a low-power-density communication scheme with spectrum-spreading by means of frequency-domain differential coding so that the secondary system does not seriously interfere with primary-user systems that have been assigned the same frequency band.

  • An Interference Rejection Combining Technique for an SFBC-OFDM System with Multiple Carrier Frequency Offsets

    Mina LEE  Rothna PEC  Kyu Seok KIM  Chang Hwan PARK  Yong Soo CHO  

     
    PAPER-Wireless Communication Technologies

      Vol:
    E99-B No:2
      Page(s):
    481-487

    In this paper, an interference rejection combining (IRC) technique is proposed for SFBC-OFDM cellular systems that exhibit multiple carrier frequency offsets (CFOs). The IRC weight and the corresponding value for CFO compensation in the proposed technique are obtained by maximizing the post-SINR, i.e., minimizing both the interference signal and inter-channel interference (ICI) terms caused by multiple CFOs. The performance of the conventional IRC and proposed IRC techniques is evaluated by computer simulation for an SFBC-OFDM cellular system with multiple CFOs.

  • MCFO Compensation and Performance Analysis for Localized DFT-S-OFDM Uplink Cooperative System

    Zhiyan ZHANG  Jianhua ZHANG  Wei XU  Yanyan ZHANG  Yi LIU  

     
    LETTER-Transmission Systems and Transmission Equipment for Communications

      Vol:
    E94-B No:1
      Page(s):
    285-289

    In the localized Discrete Fourier Transform-Spread-Orthogonal Frequency Division Multiplexing (DFT-S-OFDM) uplink cooperative system, multiple carrier frequency offsets (MCFO), arising from the nodes' separate oscillators and Doppler spreads, drastically degrade the performance of the receiver. To solve the problem, this letter proposes an efficient MCFO compensation method which fully exploits the diversity gain of space frequency block coded (SFBC) and the characteristic of inter-carrier interference (ICI). Moreover, the bit error ratio (BER) lower bound of the proposed algorithm is theoretically derived. Simulation results validate the theoretical analysis and demonstrate that the proposed MCFO compensation method can achieve robust BER performance in a wide range of MCFO in the multipath Rayleigh fading channel.

  • A Simple Adaptive Switching Scheme between STBC-OFDM and SFBC-OFDM Systems

    Keonkook LEE  Youngok KIM  Joonhyuk KANG  

     
    LETTER-Wireless Communication Technologies

      Vol:
    E92-B No:11
      Page(s):
    3546-3549

    In this letter, we propose a simple adaptive switching scheme to enhance the performance of space-time/frequency block coded OFDM systems (STBC/SFBC-OFDM). Since STBC-OFDM and SFBC-OFDM undergo severe performance degradation in time- and frequency-selective fading channels, respectively, performance enhancement can be achieved by switching between STBC-OFDM and SFBC-OFDM over a continuously varying channel environments. Thus, a new switching scheme based on the characteristics of the actual channel is proposed. The effectiveness of the proposed scheme is demonstrated by computer simulations.

  • Frequency-Domain Partial Response Coding for Alamouti SFBC-OFDM System in Doubly Selective Channels

    Jung Min CHOI  Jae Hong LEE  

     
    LETTER-Wireless Communication Technologies

      Vol:
    E92-B No:6
      Page(s):
    2298-2302

    Time variation within an OFDM symbol causes inter-carrier interference (ICI). In this letter, frequency-domain partial response coding (PRC) is investigated to reduce ICI in the Alamouti SFBC-OFDM system. Based on the expression of the ICI power in the SFBC-OFDM system with PRC, the near-optimal weights of PRC are derived. Simulation results show that the PRC scheme can reduce ICI effectively.

  • Field Experiments on Open-Loop Type Transmit Diversity in OFDM Radio Access

    Shohei TSUCHIDA  Mamoru SAWAHASHI  Hidekazu TAOKA  Kenichi HIGUCHI  

     
    PAPER

      Vol:
    E92-B No:5
      Page(s):
    1705-1713

    This paper presents field experiments on open-loop transmit diversity in downlink OFDM based radio access conducted in a measurement course in Yokosuka city near Tokyo. The experimental results obtained under actual propagation channel conditions show that Space Frequency Block Code (SFBC) and the combination of SFBC and Frequency Switched Transmit Diversity (FSTD) (or Cyclic Delay Diversity (CDD)) are the most promising open-loop transmit diversity schemes for two- and four-antenna transmission, respectively, from the viewpoint of the required average received signal-to-noise power ratio (SNR).

  • An Iterative Cyclic Prefix Reconstruction Technique for Multi-Antenna Single-Carrier Transmission Systems over Multipath Wireless Channels

    Min-Sung KIM  Jong-Bu LIM  Gi-Hong IM  

     
    PAPER-Wireless Communication Technologies

      Vol:
    E90-B No:11
      Page(s):
    3208-3215

    In this paper, an efficient cyclic prefix reconstruction (CPR) technique with turbo equalization is developed for multi-antenna single-carrier frequency-domain equalization (SC-FDE) systems, which are for multi-input multi-output (MIMO), space-time block code (STBC), and space-frequency block code (SFBC) applications. The proposed method includes pre-processing estimation (PPE), weighted interblock interference cancellation (WIBIC), or residual intercarrier interference suppression (RICIS). PPE is employed to compute initial values of MIMO turbo equalization and the WIBIC is developed to cancel interblock interference (IBI) at the initial iteration of the CPR for STBC SC-FDE. RICIS is used to mitigate residual intercarrier interference (ICI) after each iteration of the CPR. By applying the proposed method to the multi-antenna SC-FDE system with insufficient cyclic prefix (CP), we can significantly improve its error performance, obtaining the benefits of spectral efficiency gain and multiplexing/diversity gain in MIMO/STBC/SFBC.

  • Single Carrier Frequency-Domain Equalization with Transmit Diversity over Mobile Multipath Channels

    Tae-Won YUNE  Chan-Ho CHOI  Gi-Hong IM  

     
    PAPER-Wireless Communication Technologies

      Vol:
    E89-B No:7
      Page(s):
    2050-2060

    This paper discusses a cyclic prefixed single carrier frequency-domain equalization (SC-FDE) scheme with two types of transmit diversity. Firstly, we propose a SC-FDE system with space-frequency block coding (SFBC). The transmit sequence of the proposed system is designed to have spatial and frequency diversities, which is equivalent to the SFBC. The corresponding combining receiver is derived under a minimum mean square error (MMSE) criterion. It is shown that the proposed system significantly outperforms the SC-FDE system with space-time block coding (STBC) over fast fading channels, while providing lower computational complexity than orthogonal frequency division multiplexing (OFDM) combined with SFBC. We verify the performance of two-branch transmit diversity systems including the proposed one through bit error rate (BER) analysis. Secondly, as a scheme that combines STBC and SFBC, a space-time-frequency block code (STFBC) SC-FDE system is presented. Computer simulation results show that the proposed STFBC SC-FDE system has better immunity to the distortion caused by both fast fading and severe frequency selective fading, compared to the SC-FDE system with the STBC or the SFBC scheme. Complexity analysis is also conducted to compare their computational loads of the transceiver. It is shown that the proposed STFBC SC-FDE system has lower computational complexity than the STFBC OFDM system.