Tomographic Techniques for Radar Ice Sounding

Low frequency radars, also known as sounders, can be used for subsurface measurements of Earth’s massive ice sheets. Radar data are essential to improving ice sheet models for better prediction of the response of these ice sheets to global climate change. While airborne sounders are needed for detai...

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Main Author: Nielsen, Ulrik
Format: Book
Language:English
Published: Danmarks Tekniske Universitet (DTU) 2015
Subjects:
Online Access:https://orbit.dtu.dk/en/publications/e41618e9-b106-4d74-b86e-78dc2c35a8ac
https://backend.orbit.dtu.dk/ws/files/116760663/Nielsen2015_PhDthesis.pdf
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spelling ftdtupubl:oai:pure.atira.dk:publications/e41618e9-b106-4d74-b86e-78dc2c35a8ac 2023-05-15T16:41:26+02:00 Tomographic Techniques for Radar Ice Sounding Nielsen, Ulrik 2015 application/pdf https://orbit.dtu.dk/en/publications/e41618e9-b106-4d74-b86e-78dc2c35a8ac https://backend.orbit.dtu.dk/ws/files/116760663/Nielsen2015_PhDthesis.pdf eng eng Danmarks Tekniske Universitet (DTU) info:eu-repo/semantics/openAccess Nielsen , U 2015 , Tomographic Techniques for Radar Ice Sounding . Danmarks Tekniske Universitet (DTU) , Kgs. Lyngby . /dk/atira/pure/sustainabledevelopmentgoals/climate_action SDG 13 - Climate Action book 2015 ftdtupubl 2022-08-14T08:22:34Z Low frequency radars, also known as sounders, can be used for subsurface measurements of Earth’s massive ice sheets. Radar data are essential to improving ice sheet models for better prediction of the response of these ice sheets to global climate change. While airborne sounders are needed for detailed measurements of fast-flowing outlet glaciers, a space-based sounder is potentially capable of broad coverage with high spatial and uniform sampling over the interior of the ice sheets. For both types of systems, however, surface clutter that obscures the depth signal of interest is a major technical challenge. This dissertation deals with tomographic techniques based on multiphase-center radars that represent state-of-the-art technology within the field of ice sounding. The use of advanced tomographic processing for clutter suppression is investigated, which up to this point has been largely unexplored in the literature. The investigation also includes a theoretical study of beam forming and direction-of-arrival (DOA) estimation techniques. In addition to the primary treatment of clutter suppression,additional novel applications of tomography are also explored. Based on an experimental multi-phase-center dataset acquired with the POLarimetric Airborne Radar Ice Sounder (POLARIS), single-pass tomographic surface clutter suppression capabilities are demonstrated for the system. Using repeat-pass POLARIS data, a method based on data-driven DOA estimation is used to show an along-track variation of the effective scattering center of the surface return, which is caused by a varying penetration depth. As an alternative to the traditional echogram, a new DOA representation that offers a better visualization of the desired signals and clutter is suggested. Based on this alternative presentation, a novel technique for discrimination of the desired bed return from strong surface clutter is presented. The technique is applied to data from the channel of the challenging Jakobshavn Glacier acquired with the Multi-channel ... Book Ice Sheet Jakobshavn Technical University of Denmark: DTU Orbit
institution Open Polar
collection Technical University of Denmark: DTU Orbit
op_collection_id ftdtupubl
language English
topic /dk/atira/pure/sustainabledevelopmentgoals/climate_action
SDG 13 - Climate Action
spellingShingle /dk/atira/pure/sustainabledevelopmentgoals/climate_action
SDG 13 - Climate Action
Nielsen, Ulrik
Tomographic Techniques for Radar Ice Sounding
topic_facet /dk/atira/pure/sustainabledevelopmentgoals/climate_action
SDG 13 - Climate Action
description Low frequency radars, also known as sounders, can be used for subsurface measurements of Earth’s massive ice sheets. Radar data are essential to improving ice sheet models for better prediction of the response of these ice sheets to global climate change. While airborne sounders are needed for detailed measurements of fast-flowing outlet glaciers, a space-based sounder is potentially capable of broad coverage with high spatial and uniform sampling over the interior of the ice sheets. For both types of systems, however, surface clutter that obscures the depth signal of interest is a major technical challenge. This dissertation deals with tomographic techniques based on multiphase-center radars that represent state-of-the-art technology within the field of ice sounding. The use of advanced tomographic processing for clutter suppression is investigated, which up to this point has been largely unexplored in the literature. The investigation also includes a theoretical study of beam forming and direction-of-arrival (DOA) estimation techniques. In addition to the primary treatment of clutter suppression,additional novel applications of tomography are also explored. Based on an experimental multi-phase-center dataset acquired with the POLarimetric Airborne Radar Ice Sounder (POLARIS), single-pass tomographic surface clutter suppression capabilities are demonstrated for the system. Using repeat-pass POLARIS data, a method based on data-driven DOA estimation is used to show an along-track variation of the effective scattering center of the surface return, which is caused by a varying penetration depth. As an alternative to the traditional echogram, a new DOA representation that offers a better visualization of the desired signals and clutter is suggested. Based on this alternative presentation, a novel technique for discrimination of the desired bed return from strong surface clutter is presented. The technique is applied to data from the channel of the challenging Jakobshavn Glacier acquired with the Multi-channel ...
format Book
author Nielsen, Ulrik
author_facet Nielsen, Ulrik
author_sort Nielsen, Ulrik
title Tomographic Techniques for Radar Ice Sounding
title_short Tomographic Techniques for Radar Ice Sounding
title_full Tomographic Techniques for Radar Ice Sounding
title_fullStr Tomographic Techniques for Radar Ice Sounding
title_full_unstemmed Tomographic Techniques for Radar Ice Sounding
title_sort tomographic techniques for radar ice sounding
publisher Danmarks Tekniske Universitet (DTU)
publishDate 2015
url https://orbit.dtu.dk/en/publications/e41618e9-b106-4d74-b86e-78dc2c35a8ac
https://backend.orbit.dtu.dk/ws/files/116760663/Nielsen2015_PhDthesis.pdf
genre Ice Sheet
Jakobshavn
genre_facet Ice Sheet
Jakobshavn
op_source Nielsen , U 2015 , Tomographic Techniques for Radar Ice Sounding . Danmarks Tekniske Universitet (DTU) , Kgs. Lyngby .
op_rights info:eu-repo/semantics/openAccess
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