MIMO decoding based on stochastic reconstruction from multiple projections

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    7 Scopus citations

    Abstract

    Least squares (LS) fitting is one of the most fundamental techniques in science and engineering. It is used to estimate parameters from multiple noisy observations. In many problems the parameters are known a-priori to be bounded integer valued, or they come from a finite set of values on an arbitrary finite lattice. In this case finding the closest vector becomes NP-Hard problem. In this paper we propose a novel algorithm, the Tomographic Least Squares Decoder (TLSD), that not only solves the ILS problem, better than other sub-optimal techniques, but also is capable of providing the a-posteriori probability distribution for each element in the solution vector. The algorithm is based on reconstruction of the vector from multiple two-dimensional projections. The projections are carefully chosen to provide low computational complexity. Unlike other iterative techniques, such as the belief propagation, the proposed algorithm has ensured convergence. We also provide simulated experiments comparing the algorithm to other sub-optimal algorithms.

    Original languageEnglish
    Title of host publication2009 IEEE International Conference on Acoustics, Speech, and Signal Processing - Proceedings, ICASSP 2009
    Pages2457-2460
    Number of pages4
    DOIs
    StatePublished - 2009
    Event2009 IEEE International Conference on Acoustics, Speech, and Signal Processing, ICASSP 2009 - Taipei, Taiwan, Province of China
    Duration: 19 Apr 200924 Apr 2009

    Publication series

    NameICASSP, IEEE International Conference on Acoustics, Speech and Signal Processing - Proceedings
    ISSN (Print)1520-6149

    Conference

    Conference2009 IEEE International Conference on Acoustics, Speech, and Signal Processing, ICASSP 2009
    Country/TerritoryTaiwan, Province of China
    CityTaipei
    Period19/04/0924/04/09

    Keywords

    • Bayesian decoding
    • Integer least squares
    • MIMO communication systems
    • Sparse linear equations

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