DocumentCode :
3045848
Title :
SAR Image Matching Based on Speeded Up Robust Feature
Author :
Liu, Ruihua ; Wang, Yanguang
Author_Institution :
Coll. of Electron. Inf. Eng., Civil Aviation Univ. of China, Tianjin, China
Volume :
4
fYear :
2009
fDate :
19-21 May 2009
Firstpage :
518
Lastpage :
522
Abstract :
Speeded-Up Robust Features (SURF) is a novel scale-invariant and rotation-invariant feature. It is perfect in its high computation speed and robustness. In this paper, we apply SURF in SAR image matching accord to its characteristic, and then acquire its invariant feature for matching in an addition of no any pre-processing. In the process of image matching, we use the nearest neighbor rule for initial matching, where after, remove the wrong points of the matches through RANSAC. All this method was called R-SURF(RANSAC-SURF). In this method, the threshold range of the nearest neighbor rule has been obtained with our experiment. Experimental results indicated that the threshold interval was [0.6~0.7], and the threshold that you choose in this interval, increased little matching time, but got more than 95% correct matching rate. We used three different types of SAR images in experiments which are in order to put to the proof that SURF is more robust in scale change, rotation change and noise.
Keywords :
feature extraction; image matching; image segmentation; radar imaging; synthetic aperture radar; RANSAC; SAR image matching; image processing; nearest neighbor rule threshold range; rotation-invariant feature; scale-invariant feature; speeded up robust feature; Earth; Educational institutions; Filters; Image matching; Intelligent systems; Microwave imaging; Nearest neighbor searches; Pixel; Robustness; Synthetic aperture radar; Image Matching; Interest Point Descriptor; Interest point detection;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Systems, 2009. GCIS '09. WRI Global Congress on
Conference_Location :
Xiamen
Print_ISBN :
978-0-7695-3571-5
Type :
conf
DOI :
10.1109/GCIS.2009.297
Filename :
5209238
Link To Document :
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