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A two-stage method for oil slick segmentation

delete2010-09-13
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PRE
AI
F
Fang Li
C
Chaomin Shen *
DOI:10.1080/01431160903193513delete
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摘要

摘要

En 中文
In this paper we propose a two-stage algorithm for oil slick segmentation in synthetic aperture radar (SAR) images. In the first stage, we propose a new variational model to reduce speckles in non-textured SAR images. Applications to simulated and real SAR images show that the method is well balanced in the quality of the conventional criteria. Then, in the second stage, we use the fast Chan-Vese (CV) model and the level set method to segment the oil slick in the de-speckled SAR image. The additive operator splitting (AOS) scheme is used in the numerical implementation to improve computational efficiency. Experimental results show that our two-stage algorithm is effective for oil slick segmentation in SAR images.
Keyword:
SAR IMAGES
SPECKLE
AI总结

AI总结

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期刊

International Journal of Remote Sensing 封面图
International Journal of Remote Sensing
IF:
2.6
论文数:
1.2W
被引数:
2.7W

机构

E
east china normal university
学者数:
3.1W
论文数: 2.1W
被引数: 25