Comparing audio and visual information for speech processing

David Dean, P. Lucey, S. Sridharan, T. Wark
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引用次数: 8

Abstract

This paper examines the utility of audio-visual speech for the two related tasks of speech and speaker recognition. A study of the confusion that exists between speaker and speech elements was performed to show that principal component analysis (PCA) based visual speech is considerably better for the task of speaker recognition than for speech. Decision fusion speech and speaker recognition engines were also tested under various levels of acoustic degradation to find that the optimal fusion configuration for speaker recognition was substantially different than that for speech. These results highlight the problem of employing similar visual features for both speech and speaker recognition.
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比较音频和视觉信息的语音处理
本文探讨了视听语音在语音和说话人识别两个相关任务中的应用。对说话人和语音元素之间存在的混淆进行了研究,表明基于主成分分析(PCA)的视觉语音在说话人识别任务上比语音识别任务要好得多。决策融合语音和说话人识别引擎也在不同的声退化水平下进行了测试,发现说话人识别的最佳融合配置与语音的基本不同。这些结果突出了在语音和说话人识别中使用相似的视觉特征的问题。
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