Please use this identifier to cite or link to this item: https://hdl.handle.net/2440/67307
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Type: Conference paper
Title: Corner detection of contour images using spectral clustering
Author: Li, X.
Hu, W.
Zhang, Z.
Citation: 2007 IEEE International Conference on Image Processing : ICIP 2007 : Proceedings, vol. 3 / pp. 37-40
Publisher: IEEE
Publisher Place: Online
Issue Date: 2007
ISBN: 1424414377
Conference Name: IEEE International Conference on Image Processing (14th : 2007 : San Antonio, Texas)
Statement of
Responsibility: 
Xi Li, Weiming Hu, Zhongfei Zhang
Abstract: Corner detection plays an important role in object recognition and motion analysis. In this paper, we propose a hierarchical corner detection framework based on spectral clustering (SC). The framework consists of three stages: contour smoothing, corner cell extraction and corner localization. In the contour smoothing stage, wavelet decomposition is imposed on the raw contour to reduce noise. In the corner cell extraction stage, several atomic corner cells are obtained by SC. In the corner localization stage, the corner points of each corner cell are located by the corner locator based on the kernel-weighted cosine curvature measure. Experimental results demonstrate the superiority of our framework.
Keywords: corner detection
spectral clustering
mean shift
Rights: ©2007 IEEE
DOI: 10.1109/ICIP.2007.4379240
Published version: http://dx.doi.org/10.1109/icip.2007.4379240
Appears in Collections:Aurora harvest 5
Computer Science publications

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