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Robust Speaker Recognition with Cross-Channel Data: MIT-LL Results on the 2006 NIST SRE Auxiliary Microphone Task

机译:具有跨通道数据的可靠说话人识别:MIT-LL在2006 NIST SRE辅助麦克风任务中的结果

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One particularly difficult challenge for cross-channel speaker verification is the auxiliary microphone task introduced in the 2005 and 2006 NIST Speaker Recognition Evaluations, where training uses telephone speech and verification uses speech from multiple auxiliary microphones. This paper presents two approaches to compensate for the effects of auxiliary microphones on the speech signal. The first compensation method mitigates session effects through Latent Factor Analysis (LFA) and Nuisance Attribute Projection (NAP). The second approach operates directly on the recorded signal with noise reduction techniques. Results are presented that show a reduction in the performance gap between telephone and auxiliary microphone data.
机译:跨通道说话者验证的一项特别困难的挑战是2005年和2006年NIST说话者识别评估中引入的辅助麦克风任务,其中训练使用电话语音,而验证使用来自多个辅助麦克风的语音。本文提出了两种方法来补偿辅助麦克风对语音信号的影响。第一种补偿方法通过潜在因子分析(LFA)和有害属性投影(NAP)减轻会话影响。第二种方法是使用降噪技术直接对记录的信号进行操作。结果表明,电话和辅助麦克风数据之间的性能差距有所减小。

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