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Automatic Text Extraction in News Images using Morphology

机译:使用形态学自动提取新闻图像中的文本

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In this paper we present a new method to extract both superimposed and embedded graphical texts in a freeze-frame of news video. The algorithm is summarized in the following three steps. For the first step, we convert a color image into a gray-level image and apply contrast stretching to enhance the contrast of the input image. Then, a modified local adaptive thresholding is applied to the contrast-stretched image. The second step is divided into three processes: eliminating text-like components by applying erosion, dilation, and (OpenClose + CloseOpen)/2 morphological operations, maintaining text components using (OpenClose + CloseOpen)/2 operation with a new Geo-correction method, and subtracting two result images for eliminating false-positive components further. In the third filtering step, the characteristics of each component such as the ratio of the number of pixels in each candidate component to the number of its boundary pixels and the ratio of the minor to the major axis of each bounding box are used. Acceptable results have been obtained using the proposed method on 300 news images with a recognition rate of 93.6%. Also, our method indicates a good performance on all the various kinds of images by adjusting the size of the structuring element.
机译:在本文中,我们提出了一种在新闻视频冻结帧中提取叠加和嵌入式图形文本的新方法。该算法分为以下三个步骤。第一步,我们将彩色图像转换为灰度图像,并应用对比度拉伸以增强输入图像的对比度。然后,将改进的局部自适应阈值化应用于对比度拉伸的图像。第二步分为三个过程:通过应用腐蚀,膨胀和(OpenClose + CloseOpen)/ 2形态学运算消除类文本成分,使用(OpenClose + CloseOpen)/ 2运算以及新的地理校正方法来维护文本成分,然后减去两个结果图像以进一步消除假阳性成分。在第三滤波步骤中,使用每个分量的特性,例如每个候选分量中的像素数与其边界像素数的比率以及每个边界框的短轴与长轴的比率。使用该方法对300张新闻图像获得了可接受的结果,识别率为93.6%。此外,通过调整结构元素的大小,我们的方法在所有各种图像上均显示出良好的性能。

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