JOURNAL OF CHINA UNIVERSITIES OF POSTS AND TELECOM ›› 2017, Vol. 24 ›› Issue (3): 7-15.doi: 10.1016/S1005-8885(17)60206-1

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Low-complexity single-channel blind source separation


  • Received:2016-11-17 Revised:2017-04-11 Online:2017-06-30 Published:2017-06-30
  • Contact: Xing Zhang

Abstract: For the time-frequency overlapped signals, a low-complexity single-channel blind source separation (SBSS) algorithm is proposed in this paper. The algorithm does not only introduce the Gibbs sampling theory to separate the mixed signals, but also adopts the orthogonal triangle decomposition-M (QRD-M) to reduce the computational complexity. According to analysis and simulation results, we demonstrate that the separation performance of the proposed algorithm is similar to that of the per-survivor processing (PSP) algorithm, while its computational complexity is sharply reduced.

Key words: single-channel, separation, Gibbs sampling, QRD-M