基于隐马尔可夫模型的鲁棒几何唇读

M. Z. Ibrahim, D. Mulvaney
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引用次数: 11

摘要

唇读是一种通过观察嘴唇的物理运动来识别语言的过程。在本文中,我们提出了一种新的自动唇读系统,该系统利用从视频序列中提取的几何信息对动态唇动作进行分类,并在四种隐马尔可夫模型中实现。在识别CUAVE数据库中可用的受试者所说的英语数字0到9时,所提出的系统能够产生高达68%的单词识别性能,比使用传统的基于外观的离散余弦变换技术获得的结果更好。在模拟的由头部运动和图像照明变化引起的环境条件变化下操作时,还比较了这两种方法。基于外观的方法的性能受到这种旋转和亮度变化的不利影响,但基于几何的方法的性能保持一致,表明其作为多模态语音识别系统的一部分在嘈杂环境中使用的潜力是有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Robust geometrical-based lip-reading using Hidden Markov models
Lip reading is a process used to recognize speech from the viewed physical movements of the lips. In this paper, we present a new automatic lip-reading system that uses geometrical information extracted from video sequences in the classification of dynamic lip movements and implemented in four variants of Hidden Markov Models. In the recognition of the English digits 0 to 9 as spoken by the subjects available in the CUAVE database, the proposed system is able to produce a word recognition performance of up to 68%, a result better than that obtained using a conventional appearance-based Discrete Cosine Transform technique. The two approaches are also compared when operating under simulated changes in environment conditions that arise from head movements and alterations in image illumination. The performance of the appearance-based approach was adversely affected by such rotational and brightness changes, yet the performance of the geometrical-based method remained consistent, demonstrating its potential to be effective as part of a multimodal speech recognition system for use in noisy environments.
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