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Text region extraction and text segmentation on camera-captured document style images

机译:相机捕获的文档样式图像上的文本区域提取和文本分割

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In this paper, we propose a text extraction method from camera-captured document style images and propose a text segmentation method based on a color clustering method. The proposed extraction method detects text regions from the images using two low-level image features and verifies the regions through a high-level text stroke feature. The two level features are combined hierarchically. The low-level features are intensity variation and color variance. And, we use text strokes as a high-level feature using multi-resolution wavelet transforms on local image areas. The stroke feature vector is an input to a SVM (support vector machine) for verification, when needed. The proposed text segmentation method uses color clustering to the extracted text regions. We improved K-means clustering method and it selects K and initial seed values automatically. We tested the proposed methods with various document style images captured by three different cameras. We confirmed that the extraction rates are good enough to be used in real-life applications.
机译:在本文中,我们提出了一种从相机捕获的文档样式图像中提取文本的方法,并提出了一种基于颜色聚类方法的文本分割方法。所提出的提取方法使用两个低级图像特征从图像中检测文本区域,并通过高级文本笔划特征验证区域。这两个级别的功能是分层组合的。低级功能是强度变化和颜色变化。并且,我们在本地图像区域上使用多分辨率小波变换将文本笔划用作高级功能。笔划特征向量是SVM(支持向量机)的输入,以在需要时进行验证。所提出的文本分割方法使用颜色聚类来提取文本区域。我们改进了K-means聚类方法,它会自动选择K和初始种子值。我们用三个不同的摄像机捕获的各种文档样式图像测试了所提出的方法。我们确认提取率足以在现实生活中使用。

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