Beamforming Optimization Using Filterbank-based Frost Algorithm

필터뱅크 기반 프로스트 알고리즘을 이용한 빔포밍 최적화

  • 박지훈 (한국정보통신대학교(ICU) 공학부) ;
  • 이성주 (한국전자통신연구원 음성처리연구팀) ;
  • 홍정표 (한국정보통신대학교(ICU) 공학부) ;
  • 정상배 (한국정보통신대학교(ICU) 공학부) ;
  • 한민수 (한국정보통신대학교(ICU) 공학부)
  • Published : 2008.06.30

Abstract

Beamforming is one of the spatial filtering techniques which extract only desired signals from noisy environments using microphone arrays. Fixed beamforming is a simple concept and easy to implement. However, it does not show good performance in real noisy conditions. As an adaptive beamforming, Frost algorithm can be a good candidate. It uses the concept of the linearly constrained minimum variance (LCMV) algorithm. The difference between the Frost and the LCMV algorithm is the error correction scheme which is very effective feature in the aspect of performance. In this paper, as quadrature mirror filtering (QMF)-based filterbank is utilized as the pre-processing of the Frost beamformning, the filter length and the learning rate of each band is optimized to improve the performance. The performance is measured by the signal-to-noise ratio (SNR) and the Bark's scale spectral distortion (BSD).

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