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Recognizing characters in scene images

机译:识别场景图像中的字符

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摘要

An effective algorithm for character recognition in scene images is studied. Scene images are segmented into regions by an image segmentation method based on adaptive thresholding. Character candidate regions are detected by observing gray-level differences between adjacent regions. To ensure extraction of multisegment characters as well as single-segment characters, character pattern candidates are obtained by associating the detected regions according to their positions and gray levels. A character recognition process selects patterns with high similarities by calculating the similarities between character pattern candidates and the standard patterns in a dictionary and then comparing the similarities to the thresholds. A relaxational approach to determine character patterns updates the similarities by evaluating the interactions between categories of patterns, and finally character patterns and their recognition results are obtained. Highly promising experimental results have been obtained using the method on 100 images involving characters of different sizes and formats under uncontrolled lighting.
机译:研究了一种有效的场景图像字符识别算法。通过基于自适应阈值的图像分割方法将场景图像分割成区域。通过观察相邻区域之间的灰度差异来检测字符候选区域。为了确保提取多段字符和单段字符,可通过根据检测到的区域的位置和灰度级别将它们关联起来,从而获得候选字符模式。字符识别过程通过计算候选字符模式与字典中标准模式之间的相似度,然后将相似度与阈值进行比较,来选择具有高度相似性的模式。一种确定字符模式的松弛方法通过评估模式类别之间的相互作用来更新相似性,最终获得字符模式及其识别结果。使用该方法在不受控制的光照下对100张涉及不同大小和格式的字符的图像已获得了非常有希望的实验结果。

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