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  • 1
    Keywords: Forschungsbericht ; Satellitenfernerkundung ; Radar ; Synthetische Apertur ; Interferometrie ; Dauerfrostboden ; Senkung
    Type of Medium: Online Resource
    Pages: 1 Online-Ressource (77 Seiten, 39,68 MB) , Illustrationen, Diagramme
    Language: German
    Note: Förderkennzeichen BMWi 50EE1418 , Unterschiede zwischen dem gedruckten Dokument und der elektronischen Ressource können nicht ausgeschlossen werden
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  • 2
    Keywords: Forschungsbericht ; Lärmschutzbau ; Fotovoltaikanlage
    Type of Medium: Online Resource
    Pages: Online-Ressource (49 S., 21,6 MB) , 13 Tab
    ISBN: 9783956061509
    Series Statement: Berichte der Bundesanstalt für Straßenwesen Heft 252
    DDC: 670
    RVK:
    Parallel Title: Bechtold, Sebastian Forschungsdaten VOSTOK - the Voxel Octree Solar Toolkit
    Language: German
    Note: Systemvoraussetzungen: Acrobat reader. , Kurzfassung dt. und engl.
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  • 3
    Publication Date: 2018-01-19
    Description: Three-dimensional data acquired by terrestrial laser scanning (TLS) provides an accurate representation of the Earth’s surface, which is commonly used to detect and quantify topographic changes on a small scale. However, in Arctic permafrost regions TLS-based monitoring of thaw subsidence is challenging due to vegetation and the micro-topographic characteristics (e.g. dense moss-lichen layer, hummocks etc.). In this presentation, we focus, firstly, on the evaluation of raster- and point-based TLS methods for quantifying small-scale thaw subsidence within the continuous permafrost zone. Secondly, a new filter strategy is presented that reduces spatial sampling effects caused by various factors such as vegetation, micro-topography and scan-setup. Our study site is located at the Trail Valley Creek research watershed, 50 km north-east of Inuvik, Northwest Territories, Canada. Three field campaigns took place in 2015 and 2016. Besides capturing TLS data, at-point real-time kinematic (RTK) Global Navigation Satellite System (GNSS) measurements and manual subsidence measurements were gathered. To achieve a highly accurate registration (on mm-scale) of the three TLS campaigns, co-registration of the georeferenced point clouds is performed based on the stable fix points in the otherwise highly dynamic permafrost environment. Then, different methods to quantify vertical ground movements are applied and evaluated. The result reveals limitations of standard raster-based DEM differencing, but also of point-based distance calculation for detecting spatial patterns of small-scale thaw subsidence. In the Arctic tundra ecosystem, TLS-based deformation analysis is strongly affected by occlusion and spatial sampling effects, even if data acquisition is repeated from similar scan positions. We show that the mentioned errors can be reduced by capturing the ground surface from more than one TLS scan position. Our filter strategy allows to identify TLS points which are suitable for multi-temporal deformation analyses, and results in an average seasonal subsidence rate (2015/06-2015/08) of about -2.0 cm at our study site. The derived subsidence maps deliver highly accurate ground-truth data, which is needed to improve area-wide subsidence monitoring methods such as SAR interferometry. This leads to a deeper understanding of permafrost-related subsidence processes.
    Repository Name: EPIC Alfred Wegener Institut
    Type: Conference , notRev
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  • 4
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    Bibliothek Wissenschaftspark Albert Einstein
    In:  EPIC315th International Circumpolar Remote Sensing Symposium, Potsdam, Germany, 2018-09-10-2018-09-14Potsdam, Germany, Bibliothek Wissenschaftspark Albert Einstein
    Publication Date: 2018-09-24
    Description: Northward shift of the treeline is expected circum-Arctic and has been observed in a number of locations in response to Arctic warming. The transitional zone between forest and tundra is, therefore, a vulnerable region that requires systematic monitoring. Currently, radar remote sensing is hardly employed in the treeline zone. The unique constellation of the TanDEM-X satellites with its bistatic mode and unprecedented spatial resolution opens new opportunities for monitoring of the treeline zone. We focus on an area near the Trail Valley Creek research basin in the east of the Mackenzie Delta in the Northwest Territories, Canada. The area lies at the northern edge of the treeline zone. Erect vegetation there is characterised by deciduous shrubs up to 3 m in height and isolated patches of sparse coniferous forest. We evaluate the potential of TanDEM-X bistatic data to characterise the structural properties of the forest patches. The TanDEM-X data were acquired during the TanDEM-X Science Phase in 2015, when the effective baseline was large and constant (approximately 540 m). We employ interferometric coherence from multitemporal bistatic pairs and compare it with standard vegetation metrics obtained from airborne LiDAR data. The full-waveform airborne LiDAR data were captured in September 2016, covering an area of about 20 km x 6 km with a point density of approximately 5 points per square meter. LiDAR metrics include vegetation height percentiles and vegetation ratio. The preliminary analysis shows a high agreement between TanDEM-X bistatic coherence and LiDAR vegetation metrics. The relation between coherence and LiDAR metrics, averaged for each forest patch, yields in a strong inverse correlation, varying from -0.81 to -0.88 for different LiDAR metrics. On sub- atch scale, spatial patterns of coherence and LiDAR metrics also show high inverse correspondence. Thus, a pixel-by-pixel comparison gives a first-shot correlation between tree height 99 percentile and coherence from -0.45 to -0.63 for different forest patches. Taking into account the global coverage of multiple bistatic TanDEM-X data acquired for the global digital elevation model, our results provide a basis for the quantification of the treeline properties circum-Arctic.
    Repository Name: EPIC Alfred Wegener Institut
    Type: Conference , notRev
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  • 5
    Publication Date: 2019-10-22
    Description: Etwa ein Viertel der nördlichen Hemisphäre ist von dauerhaft gefrorenem Boden, dem Permafrost, geprägt. Im Sommer taut die oberste Schicht des Permafrostes auf und gefriert im Winter wieder. Durch die starke Erwärmung des arktischen Klimas taut der Boden im Sommer tiefer auf als bisher. In südlichen Gebieten der Arktis kommt Permafrost nur noch vereinzelt vor (diskontinuierlich oder sporadisch). Durch die Erwärmung kann Permafrost in diesen Gebieten sogar komplett verschwinden. Wenn Permafrost im Sommer auftaut, schmilzt das im Boden gespeicherte Eis. Dadurch verringert sich das Bodenvolumen und die Landoberfläche senkt sich in vielen Gebieten der Arktis. Zwar findet während der Gefrierperiode oftmals wieder eine Hebung statt. Jedoch konnte in den vergangenen Jahren in einigen Gebieten eine Nettosenkung - auch Subsidenz genannt - beobachtet werden. Diese ist auf die ansteigenden Temperaturen und die damit verbundenen höheren Auftauraten zurückzuführen. Das verstärkte Tauen des Permafrostbodens hat schwerwiegende Folgen für Ökosysteme, Infrastruktur und die ansässige Bevölkerung mit sich. Es ist daher sowohl für die Wissenschaft, als auch für Wirtschaft und Politik essentiell, diese Vorgänge quantifizieren zu können.
    Repository Name: EPIC Alfred Wegener Institut
    Type: Miscellaneous , notRev
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  • 6
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    Laboratoire EDYTEM - UMR5204 Université Savoie Mont Blanc
    In:  EPIC35th European Conference on Permafrost (EUCOP 2018), Chamonix, France, 2018-06-23-2018-07-01Le Bourget du Lac, France, Laboratoire EDYTEM - UMR5204 Université Savoie Mont Blanc
    Publication Date: 2018-09-24
    Description: The high-latitude forest-tundra transitional zone is a region which is highly vulnerable to the current Arctic warming. The local changes accompanying expected northward migration of the treeline requires systematic monitoring. We focus on an area in the east of the Mackenzie Delta in Northwest Territories, Canada, which is characterised by patches of black spruce forest. We investigate the capability of TerraSAR-X / TanDEM-X bistatic constellation for the characterisation of these forest patches. Interferometric phase and coherence from seven image pairs were used to estimate tree height and density. We compare the SAR products with standard vegetation metrics from airborne LiDAR, such as vegetation height percentiles and vegetation ratio. The preliminary analysis shows a high agreement between SAR and LiDAR data.
    Repository Name: EPIC Alfred Wegener Institut
    Type: Conference , notRev
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  • 7
    Publication Date: 2021-07-04
    Description: This paper investigates different methods for quantifying thaw subsidence using terrestrial laser scanning (TLS) point clouds. Thaw subsidence is a slow (millimetre to centimetre per year) vertical displacement of the ground surface common in ice‐rich permafrost‐underlain landscapes. It is difficult to quantify thaw subsidence in tundra areas as they often lack stable reference frames. Also, there is no solid ground surface to serve as a basis for elevation measurements, due to a continuous moss–lichen cover. We investigate how an expert‐driven method improves the accuracy of benchmark measurements at discrete locations within two sites using multitemporal TLS data of a 1‐year period. Our method aggregates multiple experts’ determination of the ground surface in 3D point clouds, collected in a web‐based tool. We then compare this to the performance of a fully automated ground surface determination method. Lastly, we quantify ground surface displacement by directly computing multitemporal point cloud distances, thereby extending thaw subsidence observation to an area‐based assessment. Using the expert‐driven quantification as reference, we validate the other methods, including in‐situ benchmark measurements from a conventional field survey. This study demonstrates that quantifying the ground surface using 3D point clouds is more accurate than the field survey method. The expert‐driven method achieves an accuracy of 0.1 ± 0.1 cm. Compared to this, in‐situ benchmark measurements by single surveyors yield an accuracy of 0.4 ± 1.5 cm. This difference between the two methods is important, considering an observed displacement of 1.4 cm at the sites. Thaw subsidence quantification with the fully automatic benchmark‐based method achieves an accuracy of 0.2 ± 0.5 cm and direct point cloud distance computation an accuracy of 0.2 ± 0.9 cm. The range in accuracy is largely influenced by properties of vegetation structure at locations within the sites. The developed methods enable a link of automated quantification and expert judgement for transparent long‐term monitoring of permafrost subsidence. © 2020 The Authors. Earth Surface Processes and Landforms published by John Wiley & Sons Ltd
    Description: This paper investigates methods using terrestrial laser scanning point clouds for quantifying thaw subsidence in permafrost‐underlain tundra fully automatically and by including information collected from expert analysts. Results of the developed methods achieve higher accuracies compared to manual in‐situ measurements, which are found to vary from reference measurements in the magnitude of the actual ground surface displacement observed in a 1‐year period. A link of automated quantification and expert judgement can enable transparent long‐term monitoring of thaw subsidence.
    Description: German Federal Ministry of Economics and Technology (BMWi) and German Aerospace Center (DLR)
    Description: Heidelberg Graduate School of Mathematical and Computational Methods for the Sciences, University of Heidelberg http://dx.doi.org/10.13039/501100003801
    Description: Federal Ministry of Economics and Technology (BMWi) and the German Aerospace Centre (DLR), Germany http://dx.doi.org/10.13039/501100002765
    Keywords: 551 ; change analysis ; 3D geoinformation ; ground surface displacement ; permafrost monitoring ; multitemporal LiDAR
    Type: article
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  • 8
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    In:  EPIC35th HGF Alliance “Remote Sensing and Earth System Dynamics” Week, 2017-06-26-2017-06-30
    Publication Date: 2017-10-17
    Repository Name: EPIC Alfred Wegener Institut
    Type: Conference , notRev
    Format: application/pdf
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  • 9
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    In:  EPIC3HGF Citizen Science THINKCAMP, Max Delbrück Communications Center, Berlin, 2019-03-24-2019-03-26
    Publication Date: 2020-02-23
    Description: Maschinelle Lernalgorithmen erfordern große Mengen an Trainingsdaten damit komplexe Muster und Strukturen in Bildern automatisch erkannt werden können. Immer mehr Forschungsprojekte arbeiten daher mit Netzwerken von Freiwilligen („Citizen-Scientists“) zusammen um solche Taingsdatensätze zu erzeugen. Daraus ergibt sich eine enge Verknüpfung zwischen Mensch und Maschine bei der Analyse komplexer wissenschaftlicher Daten. Im Bereich der Geowissenschaften sind Freiwillige daran beteiligt Satellitenbilder visuelle zu interpretieren. Um möglichst viele Menschen zu involvieren, wird das Kartieren von Objekten in kleine, einfache Aufgaben aufgeteilt. Diese Methodik wird als „Micro-Mapping“ bezeichnet.
    Repository Name: EPIC Alfred Wegener Institut
    Type: Conference , notRev
    Format: application/pdf
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  • 10
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    ELSEVIER SCIENCE INC
    In:  EPIC3Remote Sensing of Environment, ELSEVIER SCIENCE INC, 231, ISSN: 0034-4257
    Publication Date: 2022-10-21
    Description: The circum-Arctic transitional zone between forest and tundra, i.e. the treeline zone, is shifting northward due to current Arctic warming and, therefore, requires systematic monitoring. Up to now, radar remote sensing was hardly possible in the treeline zone due to spatial resolution and/or temporal decorrelation constraints of preceding satellite missions. The unique constellation of the TanDEM-X satellites with its bistatic mode and very high spatial resolution opens up opportunities for monitoring small (≥0.01 km2) and isolated patches of very sparse forest which are typical for the transitional zone. We focused on an area at the northern edge of the treeline zone in the Northwest Territories, Canada, and evaluated the potential of TanDEM-X bistatic data to characterize the tree height in the forest patches in this region. TanDEM-X data were acquired during the TanDEM-X Science Phase in 2015, when the perpendicular baseline was large (corresponding to the height of ambiguity of approximately 14.6 m) and kept constant. We employed TanDEM-X backscatter, bistatic coherence, and interferometric height from the stack of seven multitemporal bistatic pairs and compared them to maximum vegetation height obtained from full-waveform airborne LiDAR data. We found strong linear relationships between all TanDEM-X metrics and LiDAR vegetation height within the forest patches with r = 0.67, r = −0.69, and r = 0.78 for the backscatter, coherence, and interferometric height, respectively. Furthermore, we extracted the position of individual trees from the LiDAR data and estimated tree density as the number of trees per unit area. The linear relationships between all TanDEM-X metrics and the tree density were very weak. The relationships between all TanDEM-X metrics and tree height differentiated for three tree density classes (low, medium, and high) remained strong. Random forests regression using all three TanDEM-X metrics predicted the tree height with a mean absolute error of 0.7 m (mean forest height in the study area was 2.5 m). CoSSC pairs were generally consistent with each other and the multitemporal averaging slightly improved the performance compared to single pairs. Taking into account the global coverage of bistatic TanDEM-X data acquired for the global digital elevation model, our results show a potential for quantifying the tree height in small forest patches along the circum-Arctic treeline zone.
    Repository Name: EPIC Alfred Wegener Institut
    Type: Article , isiRev
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