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Multi-angle lipreading using angle classification and angle-specific feature integration

机译:使用角度分类和特定角度特征集成的多角度Lipreading

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Recently, visual speech recognition (VSR), or namely lipreading, has been widely researched due to development of Deep Learning (DL). The most lipreading researches focus only on frontal face images. However, assuming real scenes, it is obvious that a lipreading system should correctly recognize spoken contents not only from frontal but also side faces. In this paper, we propose a novel lipreading method that is applicable to faces taken at any angles, using Convolutional Neural Networks (CNNs) which is one of key deep-learning techniques. Our method consists of three parts; the view classification part, the feature extraction part and the integration part. We firstly apply angle classification to input faces. Based on the results, secondly we determine the best combination of pre-trained angle-specific feature extraction scheme. Finally, we integrate these features followed by DL-based lipreading. We evaluated our method using the open dataset OuluVs2dataset including multi-angle audiovisual data. We then confirmed our approach has achieved the best performance among conventional and the other DL-based lipreading schemes in the phrase classification task.
机译:最近,由于深度学习(DL)的发展,视觉语音识别(VSR)或者是Lipreading,已被广泛研究。最具Lipreading的研究只关注正面图像。然而,假设真实的场景,很明显,Lileading系统应不仅正确地识别不仅从正面识别出口内容,而且还要正确地识别口头内容。在本文中,我们提出了一种新颖的Lipreading方法,其适用于使用卷积神经网络(CNNS)以任何角度拍摄的面部,这是关键深度学习技术之一。我们的方法包括三个部分;视图分类部分,特征提取部分和集成部分。我们首先将角度分类应用于输入面。基于结果,其次,我们确定了预训练的角度特定特征提取方案的最佳组合。最后,我们整合了这些功能,然后是基于DL的Lipreading。我们使用包括多角度视听数据的Open DataSet Ouluvs2dataset评估了我们的方法。然后,我们确认了我们的方法在短语分类任务中实现了常规和其他基于DL的Lipreading方案之间的最佳性能。

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