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Detecting multilingual text in natural scene

机译:在自然场景中检测多语言文本

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In this paper, a multilingual text detection method is proposed, which focus on finding all of the text regions in natural scene regardless of their language type. According to rules of writing system, three different texture features are selected to describe the multilingual text: histogram of oriented gradient (HOG), mean of gradients (MG) and local binary patterns (LBP). Finally, cascade AdaBoost classifier is adopted to combine the influence of different features to decide the text regions. Experiments conducted on the public English dataset and the multilingual text dataset show that the proposed method is encouraging.
机译:本文提出了一种多语言文本检测方法,该方法专注于在自然场景中查找所有文本区域,而不管其语言类型如何。根据书写系统的规则,选择了三种不同的纹理特征来描述多语言文本:定向梯度直方图(HOG),梯度均值(MG)和局部二进制模式(LBP)。最后,采用级联AdaBoost分类器来结合不同功能的影响来确定文本区域。在公共英语数据集和多语言文本数据集上进行的实验表明,该方法是令人鼓舞的。

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