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Lip reading using a dynamic feature of lip images and convolutional neural networks

机译:利用嘴唇图像和卷积神经网络的动态特征进行嘴唇读取

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In this paper, a lip-reading method using a novel dynamic feature of lip images is proposed. The dynamic feature of lip images is calculated as the first-order regression coefficients using a few neighboring frames (images). It constiutes a better representation of the time derivatives to the basic static image. The dynamic feature is processed by using convolution neural networks (CNNs), which are able to reduce the negative influence caused by shaking of the subject and face alignment blurring at the feature-extraction level. Its effectiveness has been confirmed by word-recognition experiments comparing the proposed method with the conventional static (original) image.
机译:本文提出了一种利用嘴唇图像动态特征的唇读方法。使用一些相邻帧(图像)将嘴唇图像的动态特征计算为一阶回归系数。它可以更好地表示基本静态图像的时间导数。通过使用卷积神经网络(CNN)处理动态特征,该卷积神经网络可以减少因对象晃动和特征提取级别上的面部对齐模糊而造成的负面影响。通过文字识别实验将所提出的方法与传统的静态(原始)图像进行比较,已经证实了其有效性。

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