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多特征与边缘校正融合的天际线检测算法研究
引用本文:涂兵,张晓飞,潘建武,张国云,周紫璇.多特征与边缘校正融合的天际线检测算法研究[J].计算机工程与应用,2019,55(6):178-185.
作者姓名:涂兵  张晓飞  潘建武  张国云  周紫璇
作者单位:湖南理工学院 信息与通信工程学院,湖南 岳阳 414006;湖南理工学院 复杂系统优化与控制湖南省普通高等学校重点实验室,湖南 岳阳 414006;湖南理工学院 IIP创新实验室,湖南 岳阳 414006;湖南理工学院 信息与通信工程学院,湖南 岳阳 414006;湖南理工学院 IIP创新实验室,湖南 岳阳 414006
基金项目:国家自然科学基金;湖南省教育厅开放基金;湖南省教育厅开放基金;湖南省自然科学基金;湖南省科技计划;湖南省研究生科研创新项目
摘    要:针对天际线的高鲁棒性与高准确率检测问题,提出了一种多特征提取与边缘校正融合的天际线检测算法。采用Gabor纹理特征和颜色特征提取天空与非天空区域随机训练像素点的多特征值,接着采用支持向量机(SupportVector Machine,SVM)对多特征值训练得到分类器,从而检测出天际线的初始坐标位置;接着采用Canny算子对灰度化图像进行边缘检测,并利用线性五邻域搜索算法对初始坐标位置进行校正,最终得到天际线坐标位置。最后将所提算法在Web数据集和Basalt Hills数据集上进行测试,实验结果表明:提出的算法能有效地检测出较复杂图像场景中的天际线位置,在一定程度上减少了图像中相关像素点的干扰,使检测出的天际线更加平滑。

关 键 词:天际线检测  支持向量机  CANNY边缘检测  线性五邻域搜索算法

Skyline Detection Algorithm Based on Multiple Feature Extraction Fusing Edge Correction
TU Bing,ZHANG Xiaofei,PAN Jianwu,ZHANG Guoyun,ZHOU Zixuan.Skyline Detection Algorithm Based on Multiple Feature Extraction Fusing Edge Correction[J].Computer Engineering and Applications,2019,55(6):178-185.
Authors:TU Bing  ZHANG Xiaofei  PAN Jianwu  ZHANG Guoyun  ZHOU Zixuan
Affiliation:1.School of Information and Communication Engineering, Hunan Institute of Science and Technology, Yueyang, Hunan 414006, China 2.Key Laboratory of Optimization and Control for Complex Systems, College of Hunan Province, Hunan Institute of Science and Technology, Yueyang, Hunan 414006, China 3.Laboratory of Intelligent-Image Information Processing, Hunan Institute of Science and Technology, Yueyang, Hunan 414006, China
Abstract:Focused on the issue of high robustness and high accuracy detection of skyline, a skyline detection algorithm based on multiple feature extraction and edge correction is proposed. The multi-eigenvalues of the training pixels randomly in sky and non-sky regions are extracted according to texture information and color information. Then, the multi-eigenvalues are used to train a classifier based on Support Vector Machine(SVM) to obtain the initial position coordinates of skyline. Next, the Canny operator method is used to detect the edge of the gray image. And the linear five neighborhood search algorithm is used to correct the position of the initial coordinate, finally skyline coordinates of original images are obtained. The proposed algorithm is tested on the Web Set and the Basalt Hills Set, the results indicate that the proposed method can effectively detect the skyline coordinates, reduce the interference of other pixels to some extent and make the skyline more smoothly.
Keywords:skyline detection  Support Vector Machine(SVM)  Canny edge detection  linear five-neighborhood search algorithm  
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