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红外破碎人体目标的水平集修复算法
引用本文:谭勇,郭永彩,高潮.红外破碎人体目标的水平集修复算法[J].重庆大学学报(自然科学版),2013,36(4):110-117.
作者姓名:谭勇  郭永彩  高潮
作者单位:1. 重庆大学光电工程学院,重庆400044;重庆大学光电技术及系统教育部重点实验室,重庆400044;重庆长江师范学院物理学与电子工程学院,重庆408003
2. 重庆大学光电工程学院,重庆400044;重庆大学光电技术及系统教育部重点实验室,重庆400044
基金项目:教育部博士点基金资助项目(20090191110026);中央高校基本科研业务费专项资助项目(CDJXS1112002S)
摘    要:许多图像分割方法提取红外人体目标时的结果常存在破碎现象,需要修复.将图像修复转化为图像分割问题,首先应用薛定谔变换使人体碎片形成连通区域,然后提出一种综合图像区域和边缘信息的水平集分割模型提取该连通区域,模型收敛时目标修复完成.实验结果表明,该方法可自动确定目标碎片位置与归属,排除背景干扰,填补目标内部缺损,胶连缺损人体轮廓段,修复结果与真实外形总体相似度高于80%,内部残缺率低于4%,通过优化模型参数可获得良好鲁棒性.

关 键 词:红外图像  水平集  薛定谔变换  图像修复

A level set based inpainting approach for fragmentary human bodies in binarized infrared images
TAN Yong,GUO Yongcai and GAO Chao.A level set based inpainting approach for fragmentary human bodies in binarized infrared images[J].Journal of Chongqing University(Natural Science Edition),2013,36(4):110-117.
Authors:TAN Yong  GUO Yongcai and GAO Chao
Institution:1(1a.Key Lab of Optoelectronic Technology & Systems,Ministry of Education;1b.College of Optoelectronic Engineering,Chongqing University,Chongqing 400044,China;2.Physics and Electronic Engineering Department,Yangtze Normal University,Chongqing 408003,China)
Abstract:A number of image segmentation algorithms frequently fragmentize human targets in infrared images, therefore, an inpainting procedure is always needed for further application. The inpainting is transformed to be a segmentation process. Firstly, Schrdinger transform connects fragmentized human parts. Then a level set model integrating image region and boundary information is proposed to extract the connected regions produced by the Schrdinger transform, and finally the inpainting is done when the model converged to complete the segmentation. Experiments show the proposed algorithm recognizes and locates human parts automatically, fills gaps correctly, connects broken human silhouettes smoothly. The objective indictor of shape similarity between inpainting results and relevant ground-truths is above 80%, as well as the internal fragmentary proportion below 4%. With optimized parameters the approach is robust to noise disturbance.
Keywords:infrared images  level set  Schrdinger transform  image inpainting
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