Small unmanned aerial systems comparative analysis for the application to coastal erosion monitoring

GeoResJ - Tập 13 - Trang 175-185 - 2017
A. Clark1
1University of Prince Edward Island Climate Research Lab 550 University Ave, Charlottetown, PE Canada C1A 4P3

Tài liệu tham khảo

Anderson, 2013, Lightweight unmanned aerial vehicles will revolutionize spatial ecology, Front Ecol Environ, 11, 138, 10.1890/120150 Baptista, 2007, Monitoring Sandy Shores Morphologies by DGPS — A Practical Tool to Generate Digital Elevation Models Monitoring Sandy Shores Morphologies by DGPS, 1516 Dalamagkidis, 2008, On unmanned aircraft systems issues, challenges and operational restrictions preventing integration into the National Airspace System, Progress in Aerospace Sciences, 44, 503, 10.1016/j.paerosci.2008.08.001 Flener, 2013, Seamless mapping of river channels at high resolution using mobile liDAR and UAV-photography, Remote Sensing, 5, 6382, 10.3390/rs5126382 Gulyaev, 2004, Terrestrial methods for monitoring cliff erosion in an urban environment, J Coastal Res, 20, 871, 10.2112/1551-5036(2004)20[871:TMFMCE]2.0.CO;2 Harley, 2011, Assessment and integration of conventional, RTK-GPS and image-derived beach survey methods for daily to decadal coastal monitoring, Coastal Engineering, 58, 194, 10.1016/j.coastaleng.2010.09.006 Harwin, 2012, Assessing the accuracy of georeferenced point clouds produced via multi-view stereopsis from Unmanned Aerial Vehicle (UAV) imagery, Remote Sens, 4, 1573, 10.3390/rs4061573 Hugenholtz, 2012, Remote sensing and spatial analysis of aeolian sand dunes: A review and outlook, Earth-Science Reviews, 111, 319, 10.1016/j.earscirev.2011.11.006 Hugenholtz, 2013, Geomorphological mapping with a small unmanned aircraft system (sUAS): Feature detection and accuracy assessment of a photogrammetrically-derived digital terrain model, Geomorphology, 194, 16, 10.1016/j.geomorph.2013.03.023 Immerzeel, 2014, High-resolution monitoring of Himalayan glacier dynamics using unmanned aerial vehicles, Remote Sensing of Environment, 150, 93, 10.1016/j.rse.2014.04.025 Irvine Mancini, 2013, Using Unmanned Aerial Vehicles (UAV) for High-Resolution Reconstruction of Topography: The Structure from Motion Approach on Coastal Environments, Remote Sensing, 5, 6880, 10.3390/rs5126880 McCourt, M.L. (2009). PEI's Acquisition of LiDAR (Light Detection And Ranging) Data Spring 2008, (May), 13–14. Nicholls, 2010, Sea Level Rise and Its Impact on Coastal Zones, Science, 328, 1517, 10.1126/science.1185782 Nurse, 2014, Small islands, 1613 Manual Strecha, 2011, Automatic Mapping from ultra-light UAV Imagery, 2 Webster, T. (2012). Atlantic Climate Adaptation Solutions Association Solutions d'adaptation aux changements climatiques pour l'Atlantique Coastline Change in Prince Edward, (February). Webster, T, Macdonald, C, Mcguigan, K, Mouland, C, Crowell, N, Macdermott, P. GPS Validation of Lidar Elevation Models Report for Central and Eastern Prince Edward Island, 2010. Westoby, 2012, “Structure-from-Motion” photogrammetry: A low-cost, effective tool for geoscience applications, Geomorphology, 179, 300, 10.1016/j.geomorph.2012.08.021 Whitehead, 2014, Remote sensing of the environment with small unmanned aircraft systems (UASs), part 2: scientific and commercial applications 1, Journal of Unmanned Vehicle Systems, 02, 86, 10.1139/juvs-2014-0007 Zmarz, 2014, UAV – A useful tool for monitoring woodlands, Miscellanea Geographica - Reg Stud Dev, 18, 1