Speech Enhancement in Car Environ Separation

نویسندگان

  • Hiroshi SARUWATARI
  • Katsuyuki SAWAI
  • Akinobu LEE
  • Kiyohiro SHIKA
  • Atsunobu KAMINUMA
  • Masao SAKATA
چکیده

We propose a new algorithm for blind source separation (BSS), in which independent component analysis (ICA) and beamforming are combined to resolve the low-convergence problem through optimization in ICA. The proposed method consists of the following four parts: (1) frequency-domain ICA with direction-ofarrival (DOA) estimation, (2) null beamforming based on the estimated DOA, (3) diversity of (1) and (2) in both iteration and frequency domain, and (4) subband elimination (SBE) based on the independence among the separated signals. The temporal alternation between ICA and beamforming can realize fastand highconvergence optimization. Also SBE enforcedly eliminates the subband components in which the separation could not be performed well. The experiment in a real car environment reveals that the proposed method can improve the qualities of the separated speech and word recognition rates for both directional and diffusive noises.

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تاریخ انتشار 2002