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New Approach Based on Texture and Geometric Features for Text Detection

机译:基于纹理和几何特征的新方法文本检测

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Due to the huge amount of data carried by images, it is very important to detect and identify the text region as accurately as possible before performing any character recognition. In this paper we describe a text detection algorithm in complex background. It is based on texture and connected components analysis. First we abstract texture regions which usually contain text. Second, we segment the texture regions into suitable objects; the image is segmented into three classes. Finally, we analyze all connected components present in each binary image according to the three classes with the aim to remove non-text regions. Experiments on a benchmark database show the advantages of the new proposed method compared to another one. Especially, our method is insensitive to complex background, font size and color; and offers high precision (83%) and recall(73%) as well.
机译:由于图像携带的大量数据,在执行任何字符识别之前,可以尽可能准确地检测和识别文本区域非常重要。在本文中,我们描述了复杂背景中的文本检测算法。它基于纹理和连接的分量分析。首先我们抽象纹理区域,通常包含文本。其次,我们将纹理区域分段为合适的物体;图像分段为三类。最后,我们根据三个类分析每个二进制图像中存在的所有连接的组件,其目的是去除非文本区域。基准数据库的实验表明,与另一个的新方法的优势显示了新的方法。特别是,我们的方法对复杂的背景,字体大小和颜色不敏感;并提供高精度(83%)并召回(73%)。

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