DocumentCode :
23239
Title :
An Analytical Formula Approximating the Multilook Interferometric-Phase Variance for InSAR
Author :
Baochang Liu ; Yongkang Li ; Tong Wang ; Fengyang Shen ; Zheng Bao
Author_Institution :
Nat. Lab. of Radar Signal Process., Xidian Univ., Xi´an, China
Volume :
11
Issue :
4
fYear :
2014
fDate :
Apr-14
Firstpage :
878
Lastpage :
882
Abstract :
For interferometric synthetic aperture radar (InSAR), the second moment of interferometric phase, i.e., its variance, is a useful metric for InSAR applications (e.g., configuration design). Due to the high degree of nonlinearity in the probability density function of the multilook interferometric phase, it is extremely difficult to derive the analytical expression of the interferometric-phase variance as a function of the number of looks. However, in this letter, we will show that, if we follow an indirect route, then an analytical formula for approximating the interferometric-phase variance for any number of looks can be obtained. The key step of deriving this analytical formula is to transform the interferometric phase into the Euler domain. Simulation results show an excellent agreement between the measured variance curve and the curve obtained by the newly proposed formula except for some small coherence values.
Keywords :
probability; radar interferometry; synthetic aperture radar; Euler domain; InSAR; analytical formula; configuration design; high degree of nonlinearity; indirect route; interferometric phase; interferometric synthetic aperture radar; multilook interferometric-phase variance; probability density function; second moment; Accuracy; Approximation methods; Coherence; Correlation; Covariance matrices; Interferometry; Synthetic aperture radar; Interferometric phase; interferometric-phase variance; synthetic aperture radar (SAR); synthetic aperture radar interferometry (InSAR); the Cramér–Rao bound (CRB) of interferometric phase;
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing Letters, IEEE
Publisher :
ieee
ISSN :
1545-598X
Type :
jour
DOI :
10.1109/LGRS.2013.2280671
Filename :
6607169
Link To Document :
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