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Tytuł artykułu

Earth's surface deformation measurements with sar interferometry. Methods and newest archivements

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Warianty tytułu
PL
Pomiary deformacji powierzchni Ziemi przy użyciu satelitarnej interferometrii radarowej. Metody i najnowsze osiągnięcia
Języki publikacji
EN
Abstrakty
EN
In this paper the SAR inteferometric techniques and their applications to Earths surface deformations are presented. The practical use of satellite SAR (Synthetic Aperture Radar), is discussed based on examples from Poland, where these methods have been applied for the measurement of terrain deformations. The paper is focused on the studies of the natural earth surface displacements in Poland performed within GEO-IN-SAR project. The issues related to newest high resolution SAR systems are discussed with TerraSAR-X data. Due to short data archiving history those data are not sutable for natural surface movement detection. However, the performance of TerraSAR-X data against Envisat are discussed. The preliminary PSInSAR processing in presented studies did not allow to clearly detect any recent tectonic movement. However, the "blind" experiments over relatively small areas proved high reliability of PSInSAR results.
PL
Artykuł prezentuje metodykę satelitarnej interferometrii radarowej (InSAR) i jej zastosowania do pomiarów deformacji powierzchni Ziemi. W oparciu o przykłady zastosowań z terenu Polski przedstawiono wykorzystanie satelitarnych zobrazowań SAR (radar obrazowy z aperturą syntetyczną). Artykuł przedstawia przede wszystkim wykorzystanie technik InSAR do badania deformacji powierzchni terenu o przyczynach naturalnych będących przedmiotem studiów w ramach projektu GEO-IN-SAR. Omówiono również dane wysokorozdzielcze z sensora TerraSAR-X. Z powodu krótkiego okresu obserwacji, dane te nie nadają się jeszcze do badania deformacji naturalnych. Przeprowadzono jednak stadium porównawcze danych TerrSAR-X z danymi z satelity ENVISAT. Przeprowadzone dotychczas badania nie pozwoliły na wykrycie deformacji terenu w sposób jednoznaczny. Przeprowadzone testy na niewielkich obszarach wykazały ich ogromny potencjał.
Rocznik
Tom
Strony
79--92
Opis fizyczny
Bibliogr. 42 poz., rys., tab.
Twórcy
autor
  • Department of Fundamental Geology, Faculty of Earth Sciences University of Silesia, Sosnowiec, Poland
Bibliografia
  • 1. Bamler R. and Hartl P., 1998, Synthetic aperture radar interferometry. Inverse Problems, 14: R1-R54.
  • 2. Berardino P., Fornaro G., Lanari R. and Sansosti E., 2002, A New Algorithm for Surface Deformation Monitoring Based on Small Baseline Differential SAR Interferograms. IEEE Transactions on Geoscience and Remote Sensing, 40(11): 2375–2383.
  • 3. Cacoń S., Dyjor S. and Kontny B., 2005, The recent movements of earth crust surface in the Sudety and their foreland, [In:] Z. W., P. B. and B. J. (Editors), IV Conference on Neotectonics of Poland: Active Faults of Central Europe. Polsh Academy of Science, Srebrna Góra 26–28.09, pp. 60–63.
  • 4. Cattabeni M., Monti-Guarnieri A. and Rocca F., 1994, Estimation and Improvement of Coherence in SAR Interferograms. International Geoscience and Remote Sensing Symposium. Pasadena, CA , USA, 8–12 August 1994, pp. 720–722.
  • 5. Colesanti C. and Wasowski J., 2006, Investigating landslides with space-borne Synthetic Aperture Radar (SAR) interferometry. Engineering Geology, 88: 173–199.
  • 6. Colesanti C., Ferretti A., Novali F., Prati C. and Rocca F., 2003, SAR Monitoring of Progressive and Seasonal Ground Deformation using the Permanent Scatterers Technique. IEEE Transactions on Geoscience and Remote Sensing, 41(7): 1685–1701.
  • 7. Defence-Mapping-Agency, 1996, DMA Product Specifications for Digital Terrain Elevation Data Level 1 and 2, MIL -PRF–89020A
  • 8. Ferretti A., Prati C. and Rocca F., 2000, Nonlinear Subsidence Rate Estimation using Permanent Scatterers In Differential SAR Interferometry. IEEE Transactions on Geoscience and Remote Sensing, 38(5): 2202–2212.
  • 9. Ferretti A., Prati C. and Rocca F., 2001, Permanent Scatterers in SAR Interferometry. IEEE Transactions on Geoscience and Remote Sensing, 39(1): 8–20.
  • 10. Fritz T., Eineder M. (ed.) (2008), TerraSAR-X Ground Segment Basic Product Specification Document, TX-GS-DD –3302, http://www.dlr.de/tsx/documentation/ SAR _Basic_Products.pdf
  • 11. Fruneau B., Pathier E., Raymond D., Deffontaines B., Lee C. T., Wang H. T., Angelier J., Rudant J. P., and Chang C. P., 2001, Uplift of Tainan Tableland (SW Taiwan) revealed by SAR interferometry Geophysical Research Letters, v. 28, p. 3071–3074.
  • 12. Gens R. and Logan T., 2003, Alaska Satellite Facility software tools: Manual. Geophysical Institute, UA F, 180 pages.
  • 13. Ghiglia D. C. and Pritt M. D., 1998, Two-dimensional phase unwrapping: theory, algorithms, and software. John Wiley & Sons, Inc, New York.
  • 14. Goldstein R. M., Zebker H. A. and Werner C. L., 1988, Satellite radar interferometry: Two-dimensional phase unwrapping. Radio Science, 23(4): 713–720.
  • 15. GRASS-Development-Team, 2006, Geographic Resources Analysis Support System (GRASS) Software. ITC-irst, Trento, Italy. http://grass.itc.it
  • 16. Hanssen R. F., 2001, Radar Interferometry: Data Interpretation and Error Analysis. Kluwer Academic Publishers, Dordrecht.
  • 17. Hanssen R. F. et al., 2006, Atmospheric Phase Screen (APS) estimation and modeling for radar interferometry, Fourth International Workshop on ER S/Envisat SAR Interferometry, ‘FRINGE 05’, Frascati, Italy, 28 Nov- 2 Dec 2005, pp. 6 pp.
  • 18. Henderson F. M., Lewis A. J., 1998, Principles and applications of imaging radar. Manual of remote sensing, 3rd ed, vol. 2. John Wiley, New York
  • 19. Hilley G. E., Burgmann R., Ferretti A., Novali F. and Rocca F., 2004, Dynamics of Slow-Moving Landslides from Permanent Scatterer Analysis. Science, 304: 1952–1955.
  • 20. Hooper A., Zebker H., Segall P. and Kampes B., 2004, A new method for measuring deformation on volcanoes and other non-urban areas using InSAR persistent scatterers. Geophysical Research Letters, 31: L23611, doi:10.1029/2004GL021737.
  • 21. Huanyin Y. et al., 2004, Sensitivity of topography of InSAR data coregistration, EN VISAT & ER S Symposium, Salzburg, Austria, 6–10 September, 2004, 6 pp.
  • 22. Jonsson S., 2002, Modeling of Volcano and Earthquake Deformation from Satellite Radar Interferometric Observations, Stanford University, 164 pp. pp.
  • 23. Kampes B. M., Hanssen R. F. and Perski Z., 2003, Radar Interferometry with Public Domain Tools, Third International Workshop on ER S SAR Interferometry, ‘FRIN GE03’, Frascati, Italy, 1–5 Dec 2003, pp. 6 pp.
  • 24. Kortas G., 2007, Surface displacements above the historical mine in Wieliczka. Przegląd Górniczy, 3: 4–12.
  • 25. Krawczyk A. and Perski Z., 2000, Application of satellite radar interferometry on the areas of underground exploitation of copper ore in LGOM – Poland, 11th International Congress of the International Society for Mine Surveying. AGH, Kraków, pp. 209–218.
  • 26. Kowalczyk K., 2006, New Model of the Vertical Crustal Movements in the Area of Poland. Geodesy and Cartography, 32(4): 83–87.
  • 27. Leijen F. J. v., Ketelaar V. B. H., Marinkovic, P.S. and Hanssen R. F., 2005, Persistent Scatterer Interferometry: Precision, Reliability and Integration, ISPRS Workshop, High-Resolution Earth Imaging for Geospatial Information, Hannover, Germany, 17–20 May 2005, pp. 7.
  • 28. Leijen F. J. v. and Hanssen R. F., 2007, Persistent Scatterer interferometry using adaptive deformation models, ESA EN VISAT Symposium, Montreux, Switzerland, 23–27 April 2007, 6 pp. CD -ROM ESA SP–636
  • 29. Marinković P. (2008), New developments in Earth Observation: using TerraSAR-X satellite data for monitoring geophysical parameters. NAC –9, Nederlands Aardwetenschappelijk Congres, 18–19 March 2008, Veldhoven. – poster
  • 30. Massonnet D. and Feigl K. L., 1998, Radar interferometry and its application to changes in the earth’s surface. Reviews of Geophysics, 36(4): 441–500.
  • 31. Perski Z., 2003, InSAR and POLinSAR for land subsidence monitoring – a user perspective, Applications of SAR Polarimetry and Polarimetric Interferometry. ESA, Frascati.
  • 32. Perski Z., 2005, Application of SAR imagery and SAR interferometry in digital geological cartography, [In:] S. Ostaficzuk (Editor), The Current Role of Geological mapping in Geosciences. NA TO Science Series IV. Earth and Environmental Sciences pp. 255–244.
  • 33. Perski Z. and Jura D., 1999, ERS SAR Interferometry for the Land Subsidence Detection in Coal Mining Areas, Earth Observation. Earth Observation Quartery 63: 25–29.
  • 34. Perski Z., Leijen F. v. and Hanssen R., 2007, Applicability of PSInSAR for building hazard identification. Study of the 29 January 2006 Katowice exhibition hall collapse and the 24 February 2006 Moscow Basmanny market collapse, ESA EN VISAT Symposium, Montreux, Switzerland, 23–27 April 2007, ESA CDR OM SP–636.
  • 35. Perski Z. and Mróz M., 2008, Zastosowanie metod interferometrii radarowej InSAR do badania naturalnych ruchów powierzchni terenu w Polsce. Projekt GEO-IN -SAR . Archiwum Fotogrametrii i Teledetekcji, 17.
  • 36. Perski Z., Hanssen R., Wójcik A., Wojciechowski T., 2009, InSAR analyses of terrain deformation near the Wieliczka Salt Mine, Poland. Engineering Geology, Vol. 106, No. 1–2, pp. 58–67.
  • 37. Popiołek E. (ed.) (2006), Analysis of vertical displacements of mining terrains of KGHM „Polska Miedź S.A. with application of SAR interferometric techniques. Stowarzyszenie Naukowe im. S.Staszica w Krakowie. [In polish, unpublished report].
  • 38. Rosen P. et al., 2000, Synthetic Aperture Radar Interferometry. Proceedings of the IEEE , 88(3): 333–382.
  • 39. Strozzi T., Wegmuller U., Werner C.L., Wiesmann A. and Spreckels V., 2003, JERS SAR interferometry for land subsidence monitoring. IEEE Transactions on Geoscience and Remote Sensing, 41(7): 1702– 1708.
  • 40. Wójcik A. and Mrozek T., 2002, Landslides in the Carpathian Flysch, [In:] J. Ciesielczuk and S.Ostaficzuk (Editors), Proceedings of the Tenth International Conference and Fieldtrip on Landslides (IC FL); Polish Lowlands – Carpathians – Baltic Coast, Poland, 6–16 September 2002, pp. 151–167.
  • 41. Wright P. and Stow R., 1999, Detecting mining subsidence from space. Int. J. Remote Sensing, 20(6): 1183–1188.
  • 42. Varnes D. J., 1978, Slope Movement Types and Processes, [In:] Schuster R.L. & Krizek R. J. (Editors), Landslides: Analysis and Control. Special Rep. 176. Transportation Research Board, Nat. Acad. of Science, Washington.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-c33bfd7e-0472-4478-9fcc-b918f1c265a5
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