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基于灰色预测模型的图像边缘检测

Image Edge Detection Based on Grey Prediction Model

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【作者】 何仁贵; 黄登山; 陈金兵;

【Author】 He Rengui 1, Huang Dengshan 1, Chen Jinbing 2 1.Northwestern Polytechnical University, Xi′an 710072, China 2.Northwest University, Xi’an 710069, China

【机构】 西北工业大学电子信息学院; 西北大学现代教育技术中心 陕西西安710072; 陕西西安710072; 陕西西安710069;

【摘要】 简要地介绍了灰色系统理论和灰色预测模型 GM( 1 ,1 ) ,并将该模型和图像边缘检测有机地结合在一起 ,提出了一种新的图像边缘检测算法 ,对提出的算法进行了相应的仿真实验。仿真结果表明 ,该算法能有效地检测出图像的边缘 ,尤其在检测细密的条纹方面有明显优势

【Abstract】 The grey prediction model GM(1,1) is a nonlinear predictor which can be used to set up a prediction model with 4 data. We are the first to use GM(1,1) for image edge detection. To every element of an image, we use a few elements nearby to set up a GM(1,1) model and predict the element, and a prediction image is formed. The error between the original image and the prediction image forms an error image. The error image is then separated into two sub-images: the positive error sub-image and the negative error sub-image. If the error is relatively big, it is an edge element. So we can find out the edge elements by setting a right threshold. The simulation result shows that our method can detect the edge of image efficiently, and there are obvious advantages especially for detecting thin and dense stripes.

【关键词】 灰色系统; 灰色预测; GM(1,1); 边缘检测;
【Key words】 grey system; grey prediction; GM(1; 1); edge detection;
  • 【文献出处】 西北工业大学学报 ,Journal of Northwestern Polytechnical University , 编辑部邮箱 ,2005年01期
  • 【分类号】TN911.73
  • 【被引频次】50
  • 【下载频次】403
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