DocumentCode :
2804057
Title :
Correlating multiple redundant scales for corner detection
Author :
De Paula, Iaális C. ; Medeiros, Fátima N S ; Mendonça, George A. ; Passarinho, Cornélia J P ; Oliveira, Isaura N S
Author_Institution :
Univ. Fed. do Ceara, Fortaleza
fYear :
2006
fDate :
3-6 Sept. 2006
Firstpage :
789
Lastpage :
794
Abstract :
Corner detection is an important task in computer vision and image processing applications. Basically, corners are high curvature points (HCP), which can be detected by contour analysis. In this paper we propose an approach to detect corners using multiscale analysis. The algorithm provides an undecimated wavelet decomposition of the angulation signal of a shape contour and the high curvature points are identified by correlating multiple redundant scales. The goal is to detect the dominant points of a shape that accurately represent it. Assessment results have shown that the method succeeded in reconstructing the shape contour using the detected HCPs. A novel evaluation measure is also presented in order to confirm that the proposed algorithm outperforms other methods used for testing and comparison purposes. The technique is promising and effective for image retrieval applications.
Keywords :
correlation methods; edge detection; image reconstruction; image representation; wavelet transforms; angulation signal function; computer vision; corner detection; high curvature points; image processing application; image retrieval; multiple redundant scale correlation; shape contour reconstruction; shape image contour analysis; undecimated wavelet decomposition; Equations; Image analysis; Image processing; Image reconstruction; Image retrieval; Reconstruction algorithms; Shape measurement; Signal analysis; Wavelet analysis; Wavelet transforms; Corner Detection; Evaluation Measure; High Curvature Points; Shape Reconstruction; Wavelet Transform;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Telecommunications Symposium, 2006 International
Conference_Location :
Fortaleza, Ceara
Print_ISBN :
978-85-89748-04-9
Electronic_ISBN :
978-85-89748-04-9
Type :
conf
DOI :
10.1109/ITS.2006.4433379
Filename :
4433379
Link To Document :
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