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Recognition of local features for camera-based sign language recognition system

机译:识别基于相机的手语识别系统的本地特征

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A sign language recognition system is required to use information from both global features, such as hand movement and location, and local features, such as hand shape and orientation. We present an adequate local feature recognizer for a sign language recognition system. Our basic approach is to represent the hand images extracted from sign-language images as symbols which correspond to clusters by a clustering technique. The clusters are created from a training set of extracted hand images so that a similar appearance can be classified into the same cluster on an eigenspace. The experimental results indicate that our system can recognize a sign language word even in two-handed and hand-to-hand contact cases.
机译:可以使用手语识别系统来使用来自全局功能的信息,例如手动和位置,以及局部特征,例如手形和方向。我们为标志语言识别系统提供了一个充足的本地功能识别器。我们的基本方法是代表从签名图像中提取的手图像作为通过聚类技术对应于与群集对应的符号。群集是从训练集的提取的手图像组中创建的,使得类似的外观可以在Eigenspace上分类为同一群集。实验结果表明,即使在双手和手动接触案例中,我们的系统也可以识别手语单词。

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