DocumentCode
1444032
Title
Analysis of topographic decorrelation in SAR interferometry using ratio coherence imagery
Author
Lee, Hoonyol ; Liu, Jian Guo
Author_Institution
T.H. Huxley Sch. of Environ., Earth Sci. & Eng., Imperial Coll. of Sci., Technol. & Med., London, UK
Volume
39
Issue
2
fYear
2001
fDate
2/1/2001 12:00:00 AM
Firstpage
223
Lastpage
232
Abstract
Topographic decorrelation due to the local surface slope has been an obstacle to interferometric synthetic aperture radar (InSAR) applications. A modified spatial decorrelation function is derived as a function of the baseline and topography. This function explains the origin of the total topographic decorrelation phenomenon on the slopes directly facing radar illumination and layover, which may mislead InSAR coherence image interpretation. The authors define critical terrain slope (or critical incidence angle) as the angle for which two SAR signals completely decorrelate regardless of surface stability. It is found that the width of the critical terrain slope increases with the increase of the component of the baseline perpendicular to the radar look direction. A new analytical method, the ratio coherence imagery, is then introduced to highlight total topographic decorrelation against the temporal decorrelation features. The applications of this methodology are demonstrated in selected locations in the Sahara Desert, Algeria, and Almerı´a, Spain, using ERS-1 and ERS-2 SAR data
Keywords
decorrelation; radar imaging; radiowave interferometry; spaceborne radar; synthetic aperture radar; terrain mapping; Algeria; Almeria; ERS-1 SAR data; ERS-2 SAR data; InSAR; SAR interferometry; Sahara Desert; Spain; coherence image interpretation; critical incidence angle; critical terrain slope; interferometric synthetic aperture radar; layover; local surface slope; modified spatial decorrelation function; radar illumination; ratio coherence imagery; temporal decorrelation; topographic decorrelation; Coherence; Decorrelation; Image analysis; Land surface; Lighting; Radar imaging; Spaceborne radar; Stability; Surface topography; Synthetic aperture radar interferometry;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/36.905230
Filename
905230
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