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基于连通区域矩阵的文本图像识别方法
引用本文:郭晓宇,平西建,周林.基于连通区域矩阵的文本图像识别方法[J].信息工程大学学报,2012,13(3):329-333.
作者姓名:郭晓宇  平西建  周林
作者单位:信息工程大学信息工程学院,河南郑州,450002
摘    要:如何从海量的图像里将文本图像挑选出来是网络图像处理领域的研究热点.为了达到更好的文本图像识别效果,文章从文本图像的文字特征出发,提出了一种基于连通区域矩阵的文本图像识别方法.首先对图像进行二值化,计算二值化后图像的连通区域矩阵,然后根据连通区域矩阵提取出图像的8维特征值,最后使用BP神经网络来对图像进行训练和识别.实验证实,该方法在保证较高识别率的同时,明显降低了误识率.

关 键 词:文本图像识别  图像分类  连通区域矩阵  BP神经网络

Document Image Recognition Based on Connected Region Matrices
GUO Xiao-yu,PING Xi-jian,ZHOU Lin.Document Image Recognition Based on Connected Region Matrices[J].Journal of Information Engineering University,2012,13(3):329-333.
Authors:GUO Xiao-yu  PING Xi-jian  ZHOU Lin
Affiliation:( Institute of Information Engineering, Information Engineering University, Zhengzhou 450002, China)
Abstract:How to pick out document images from mountains of images has become a hot spot in network image processing. To recognize document images more efficiently, by analyzing the text characteristics of document images, a new method based on connected region matrix is proposed. Firstly, the connected region matrix of the binary image is obtained by image thresholding. Secondly, eightdimensional characteristics are extracted from the connected region rectangle frame matrix of the image. Finally, a BP artificial neural network is used to recognize document images. Experiments demonstrate this method leads to reduced recognition errors.
Keywords:document image identification  image classification  connected region matrix  BP artifi- cial neural network
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