Edge Detection Using Varied Local Edge Pattern Descriptor

Author(s):  
Huaixin Yan ◽  
Yu Wang ◽  
Na Zhang
Author(s):  
Yu Wang ◽  
Na Zhang ◽  
Huaixin Yan ◽  
Min Zuo ◽  
Cuiling Liu

Edge detection is an active and critical topic in the field of image processing, and plays a vital role for some important applications such as image segmentation, pattern classification, object tracking, etc. In this paper, an edge detection approach is proposed using local edge pattern descriptor which possesses multiscale and multiresolution property, and is named varied local edge pattern (VLEP) descriptor. This method contains the following steps: firstly, Gaussian filter is used to smooth the original image. Secondly, the edge strength values, which are used to calculate the edge gradient values and can be obtained by one or more groups of VLEPs. Then, weighted fusion idea is considered when multiple groups of VLEP descriptors are used. Finally, the appropriate threshold is set to perform binarization processing on the gradient version of the image. Experimental results show that the proposed edge detection method achieved better performance than other state-of-the-art edge detection methods.


2020 ◽  
Vol 47 (6) ◽  
pp. 0604003
Author(s):  
高佳月 Gao Jiayue ◽  
许宏丽 Xu Hongli ◽  
邵凯亮 Shao Kailiang ◽  
尹辉 Yin Hui

Author(s):  
Yu Wang ◽  
Yongsheng Zhao ◽  
Qiang Cai ◽  
Haisheng Li ◽  
Huaixin Yan

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