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Communication Dans Un Congrès Année : 1998

Blind separation for convolutive mixtures of non-stationary signals

Résumé

Abstract-This paper proposes a method of ''blind separation'' which extracts non-stationary signals (e.g., speech signals, music) from their convolutive mixtures. The function is acquired by modifying a network's parameters so that a cost function takes the minimum at any time. the cost function is the one introduced by Matsuoka et al. The learning rule is derived from the natural gradient minimization of the cost function. The validity of the proposed method is confirmed by computer simulation.
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Dates et versions

hal-00802718 , version 1 (20-03-2013)

Identifiants

  • HAL Id : hal-00802718 , version 1

Citer

Mitsuru Kawamoto, Barros Alan Kardec, Ali Mansour, K. Matsuoka, Ohnishi Noboru. Blind separation for convolutive mixtures of non-stationary signals. International Conference on Neural Information Processing (ICONIP'98), Oct 1998, Kitakyushu, Japan. ⟨hal-00802718⟩
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