Title :
Glacier motion estimation using SAR offset-tracking procedures
Author :
Strozzi, Tazio ; Luckman, Adrian ; Murray, Tavi ; Wegmüller, Urs ; Werner, Charles L.
Author_Institution :
Dept. of Geogr., Univ. of Wales, Swansea, UK
fDate :
11/1/2002 12:00:00 AM
Abstract :
Two image-to-image patch offset techniques for estimating feature motion between satellite synthetic aperture radar (SAR) images are discussed. Intensity tracking, based on patch intensity cross-correlation optimization, and coherence tracking, based on patch coherence optimization, are used to estimate the movement of glacier surfaces between two SAR images in both slant-range and azimuth direction. The accuracy and application range of the two methods are examined in the case of the surge of Monacobreen in Northern Svalbard between 1992 and 1996. Offset-tracking procedures of SAR images are an alternative to differential SAR interferometry for the estimation of glacier motion when differential SAR interferometry is limited by loss of coherence, i.e. in the case of rapid and incoherent flow and of large acquisition time intervals between the two SAR images. In addition, an offset-tracking procedure in the azimuth direction may be combined with differential SAR interferometry in the slant-range direction in order to retrieve a two-dimensional displacement map when SAR data of only one orbit configuration are available.
Keywords :
glaciology; motion estimation; radar tracking; remote sensing by radar; spaceborne radar; synthetic aperture radar; 2D displacement map; AD 1992; AD 1996; Monacobreen; Northern Svalbard; SAR images; SAR interferometry; azimuth direction; coherence tracking; differential SAR interferometry; glacier motion; glacier motion estimation; glacier surfaces; image-to-image patch offset techniques; offset-tracking procedures; patch coherence optimization; patch intensity cross-correlation optimization; satellite synthetic aperture radar; slant-range direction; surge-type glacier; Azimuth; Geography; Ice; Interferometry; Motion estimation; Radar tracking; Remote sensing; Surface topography; Surges; Synthetic aperture radar;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
DOI :
10.1109/TGRS.2002.805079