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含边缘信息的C-V模型
引用本文:何瑞英. 含边缘信息的C-V模型[J]. 计算机工程与应用, 2012, 48(18): 181-186
作者姓名:何瑞英
作者单位:重庆城市职业学院 信息工程系,重庆 402160
摘    要:边缘信息对图像分割是十分重要的。把图像的边缘信息融入C-V模型(active contours without edges),提出一个新的几何模型,它同时利用同质区域信息和边缘信息使演化曲线在目标边缘处停止。实验显示:新模型能够克服C-V模型的一些缺点;在减少分割时间的同时,对目标灰度不均匀或背景灰度不均匀、含弱边缘或强噪声的图像,分割效果不仅优于C-V模型,也优于C-V模型的两个最新改进模型(LBF和GACV)。

关 键 词:图像分割  几何活动轮廓模型  C-V模型  水平集方法  偏微分方程  

C-V model with edge information
HE Ruiying. C-V model with edge information[J]. Computer Engineering and Applications, 2012, 48(18): 181-186
Authors:HE Ruiying
Affiliation:Department of Information Project, Chongqing City Vocational College, Chongqing 402160, China
Abstract:Edge information is crucial for image segmentation.A novel geometric model is proposed,which incorporates edge information into C-V mode(lactive contours without edges).It utilizes both the information of homogeneous regions and the edge information to stop the active contours on the object boundaries.The experimental results show that the proposed model can overcome some disadvantages of C-V model,and obtain better results with respect to images that have the intensity inhomogeneity in objects or backgrounds,weak edges,and/or high noises while significantly reducing segmentation time.Besides,it has many advantages over other two improved C-V models(LBF and GACV).
Keywords:image segmentation  geometric active contour model  C-V model  level set method  partial differential equation
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