DocumentCode :
1765990
Title :
Improved EMCF-SBAS Processing Chain Based on Advanced Techniques for the Noise-Filtering and Selection of Small Baseline Multi-Look DInSAR Interferograms
Author :
Pepe, Antonio ; Yang Yang ; Manzo, Mariarosaria ; Lanari, Riccardo
Author_Institution :
IREA, Naples, Italy
Volume :
53
Issue :
8
fYear :
2015
fDate :
Aug. 2015
Firstpage :
4394
Lastpage :
4417
Abstract :
We present in this paper a solution to drastically improve the deformation time-series retrieval capability of the small baseline differential SAR interferometry (DInSAR) processing chain based on the cascade of the extended minimum cost flow (EMCF) phase unwrapping method and of the small baseline subset (SBAS) inversion technique. This improvement relies on the inclusion of two preprocessing steps implementing an effective noise-filtering operation and an efficient interferogram selection procedure, respectively. The former step filters out the noise affecting the phase components of a redundant set of conventional multi-look small baseline interferograms. This is achieved by solving, for each pixel, a nonlinear minimization problem based on computing the wrapped phase vector that minimizes the weighted circular variance of the phase difference between the original and noise-filtered interferograms. This technique is very easy to implement because it does not require any pixel selection step to be applied to the exploited full-resolution SAR images, and it has no need of any a priori information on the statistics of the complex-valued SAR images. The latter step, implementing the interferogram selection procedure, is carried out via a computationally efficient simulated annealing algorithm and allows identifying the optimum set of previously filtered small baseline interferograms to be used as input for the original EMCF-SBAS processing chain by maximizing the (average) coherence values. The presented results, achieved by processing three data sets collected by the ENVISAT ASAR sensor over the Abruzzi region (Central Italy), Mt. Etna volcano (South Italy), and Yellowstone Caldera (WY, USA), demonstrate the effectiveness of the proposed advanced EMCF-SBAS processing chain.
Keywords :
geophysical image processing; geophysical techniques; interferometry; remote sensing by radar; synthetic aperture radar; time series; =differential SAR interferometry; Abruzzi region; EMCF phase unwrapping method; EMCF-SBAS processing chain improvement; ENVISAT ASAR sensor; Mt. Etna volcano; SBAS inversion technique; United States of America; Wyoming; Yellowstone Caldera; advanced EMCF-SBAS processing chain; central Italy; complex-valued SAR image statistics; deformation time-series retrieval capability; effective noise-filtering operation; efficient interferogram selection procedure; exploited full-resolution SAR image; extended minimum cost flow; noise-filtered interferogram; original EMCF-SBAS processing chain; original interferogram; small baseline multilook DInSAR interferogram selection; small baseline subset; south Italy; weighted circular variance; wrapped phase vector; Coherence; Interferometry; Minimization; Spatial coherence; Synthetic aperture radar; Vectors; Deformation time-series; differential synthetic aperture radar interferometry (DInSAR); small baseline subset (SBAS);
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
Publisher :
ieee
ISSN :
0196-2892
Type :
jour
DOI :
10.1109/TGRS.2015.2396875
Filename :
7061462
Link To Document :
بازگشت