DocumentCode :
3166979
Title :
Using Learning Algorithms to Improve Corner Detection
Author :
Cooke, Tristrom ; Whatmough, Robert
Author_Institution :
Defence Science and Technology Organisation
fYear :
205
fDate :
6-8 Dec. 205
Firstpage :
54
Lastpage :
54
Abstract :
This paper discusses some preliminary results obtained using learning algorithms to improve the detection ability of various corner detectors. Two main problems are considered. The first problem concerns the Harris detector, which is defined using a Gaussian weighting function. A genetic algorithm is described for modifying this function to optimise the corner detection performance. The second problem concerns methods for combining corner detectors. An attempt is made to find the best combination using supervised classification techniques.
Keywords :
Application software; Australia; Buildings; Computer vision; Detectors; Genetic algorithms; Image registration; Motion detection; Object detection; Object recognition;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Digital Image Computing: Techniques and Applications, 2005. DICTA '05. Proceedings 2005
Conference_Location :
Queensland, Australia
Print_ISBN :
0-7695-2467-2
Type :
conf
DOI :
10.1109/DICTA.2005.85
Filename :
1587656
Link To Document :
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