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Utterance-based speech dereverberation using blind channel estimation and multichannel equalization

机译:使用盲信道估计和多信道均衡的基于说话的语音去混响

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Speech dereverberation considering noisy environment as well as speaker's movement is a challenging task. In this paper, we present an utterance-based noise-robust speech dereverberation technique that is suitable for non-stationary speaker. The acoustic impulse responses (AIRs) between the speaker and microphone array are estimated using the spectrally constrained frequency-domain least-mean-squares (LMS) algorithm. The AIRs are then equalized using the iterative multiple-input/output inverse theorem (MINT). It is assumed that the speaker stays still within an utterance, however, the speaker changes his/her position between the utterances. The simulation experiments conducted in various reverberant environment and speaker's position demonstrate that the proposed method can satisfactorily improve the perceptual quality of the noisy reverberated speech.
机译:考虑到嘈杂的环境以及说话者的动作,语音去混响是一项具有挑战性的任务。在本文中,我们提出了一种适用于非平稳说话者的基于发声的鲁棒语音去混响技术。使用频谱约束的频域最小均方(LMS)算法估计扬声器和麦克风阵列之间的声学​​脉冲响应(AIR)。然后使用迭代多输入/输出逆定理(MINT)均衡AIR。假定说话者仍停留在发声内,但是,说话者在发声之间改变他/她的位置。在各种混响环境和说话人的位置上进行的仿真实验表明,该方法可以令人满意地提高嘈杂混响语音的感知质量。

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