Fast Uyghur text detection in videos based on learning of baseline feature

Chang Liu, Yifan Song, Zhicheng Zhao, Fei Su · 2015

Text detection in image is always a significant part in image semantic understanding, and detection of Uyghur text is a special and extensible application. In this paper, we propose a Uyghur text detection on the basis of the learning of a baseline structure, which generated from texture feature of the text. Firstly, texture features of the image are extracted and texts are classed by a SVM classifier, and then the baseline of the text is structured and represented. Finally, another SVM classifier is trained for Uyghur text detection. The experimental results on user-built dataset including news, entertainment videos and movies show that the proposed algorithm is fast and effective, and better than several typical approaches.

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