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A robust algorithm for text region detection in natural scene images

机译:用于自然场景图像中文本区域检测的鲁棒算法

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摘要

In this paper, a new method for detecting text regions in natural scene images is presented. The proposed algorithm is based on the segmentation of objects in a scene, followed by the identification of text objects by a support vector machine (SVM). First, to segment objects in the scene, the input image is separated into chromatic and achromatic regions according to the distribution of red, green and blue (RGB) elements, and different clustering algorithms are applied. Second, each object is transformed into the wavelet domain for multi-resolution analysis, and moment features of the wavelet coefficients are used in the SVM for the classification of text objects. The proposed approach provides robustness to non-uniform illumination by using different clustering algorithms according to the characteristics of the colour components in the segmentation. Also, moment features, used for classification, are invariant to the size, direction, shape and other properties of texts. Experimental results demonstrate the effectiveness of this approach.
机译:本文提出了一种在自然场景图像中检测文本区域的新方法。所提出的算法基于场景中对象的分割,然后通过支持向量机(SVM)识别文本对象。首先,为了分割场景中的对象,根据红色,绿色和蓝色(RGB)元素的分布将输入图像分为彩色和无彩色区域,并应用不同的聚类算法。其次,将每个对象转换到小波域以进行多分辨率分析,并将小波系数的矩特征用于支持向量机中的文本对象分类。所提出的方法通过根据分割中颜色分量的特性使用不同的聚类算法,为非均匀照明提供鲁棒性。同样,用于分类的力矩特征对于文本的大小,方向,形状和其他属性是不变的。实验结果证明了这种方法的有效性。

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