Uneingeschränkter Zugang

Verification and Updating of the Database of Topographic Objects with Geometric Information About Buildings by Means of Airborne Laser Scanning Data


Zitieren

Albers, B., Kada, M. & Wichmann, A. (2016). Automatic extraction and regularization of building outlines from airborne LiDAR point cloud. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XLI(B3), 555-56010.5194/isprs-archives-XLI-B3-555-2016Search in Google Scholar

Bachofer, F. & Hochschild, V. (2015). A SVM-based approach to extract building footprints from Pléiades satellite imagery. The address: https://www.geotechrwanda2015.com/wp-content/uploads/2015/12/61_Felix-Bachofer.pdfSearch in Google Scholar

Borkowski A. & Jóźków, G. (2012). Accuracy Assessment of Building Models Created from Laser Scanning Data. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XXXIX-B3, 253-258, DOI: 10.5194/isprsarchives-XXXIX-B3-253-201210.5194/isprsarchives-XXXIX-B3-253-2012Search in Google Scholar

Burdeos, M.D., Makinano-Santillan, M. & Amora A.M. (2015). Automated building footprints extraction form DTM and DSM in ArcGIS. The address: http://publications.ccgeo.info/Paper_2015_36thACRS_THP3-59.pdfSearch in Google Scholar

Cheng, L., Gong, J., Chen, X. & Han, P. (2008). Building boundary extraction from high resolution imagery and LiDAR data. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XXXVII (B3b), 693-698Search in Google Scholar

Edelsbrunner, H., Kirkpatrick, David G. & Seidel, R. (1983). On the shape of a set of points in the plane. IEEE Transactions on Information Theory 29 (4), 551-55910.1109/TIT.1983.1056714Search in Google Scholar

Fayed, M. & Mouftah H.T. (2009). Localised alpha-shape computations for boundary recognition in sensor network. Ad Hoc Networks. 7, 1259-1269, DOI:10.1016/j.adhoc.2008.12.00110.1016/j.adhoc.2008.12.001Search in Google Scholar

Gotlib, D. (2013). Ogólna koncepcja, cel budowy i zakres informacyjny BDOT10k i BDOO, In: Olszewski R., Gotlib D. Rola bazy danych obiektów topograficznych w tworzeniu infrastruktury informacji przestrzennej w Polsce. Warszawa. Główny Urząd Geodezji i Kartografii, pp. 51-57Search in Google Scholar

Grigillo, D. & Kanjir, U. (2012). Urban object extraction from digital surface model and digital aerial images. ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences, Vol. I-3, 215-22010.5194/isprsannals-I-3-215-2012Search in Google Scholar

Hauglin, M. & Næsset, E. (2016). Detection and segmentation of small trees in the forest-tundra ecotone using airborne laser Canning. Remote Sensing, 8(407), 1-15.Search in Google Scholar

Jarząbek-Rychard, M. & Borkowski, A. (2016). 3D building reconstruction from ALS data using unambiguous decomposition into elementary structures. The ISPRS Journal of Photogrammetry and Remote Sensing, Vol. 118, 1-12, DOI:10.1016/j.isprsjprs.2016.04.00510.1016/j.isprsjprs.2016.04.005Search in Google Scholar

Matikainen, L., Hyyppä, J.A, Markelin, L., Kaartinen, H. & Kaartinen, H. (2010). Automatic detection of buildings and changes in buildings for updating of maps. Remote Sensing, Vol. 2, 1217-124810.3390/rs2051217Search in Google Scholar

Martin, K., Pengson, LTO, Bernandez, G., Sinnaco, MJ, Soriano, MRS & Pascua, CS. (2014). Building footprint extraction and tree removal in LiDAR-derived digital elevation models. The address: http://www.a-a-rs.org/acrs/administrator/components/com_jresearch/files/publications/TU1-5-3.pdfSearch in Google Scholar

Mathworks.(2013).The address: http://www.mathworks.com/matlabcentral/fileexchange/28851-alpha-shapes,funkcjaalphavol.m, autor: Jonas Lundgren (access: 20.12.2013)Search in Google Scholar

Mendela, M. (2015). Metodyka aktualizacji Bazy Danych Obiektów Topograficznych z wykorzystaniem danych lotniczego skaningu laserowego. The address: http://www.dbc.wroc.pl/dlibra/docmetadata?id=29887&from=publicationSearch in Google Scholar

Nex, F., Rupnik, E. & Remondino, F. (2013). Building footprints extraction from oblique imagery. ISPRS Journal of Photogrammetry and Remote Sensing, II-3/W3, 61-6610.5194/isprsannals-II-3-W3-61-2013Search in Google Scholar

Orthuber, E. & Avbelj, J. (2015). 3D building re construction from LiDAR point clouds by adaptive dual contouring. ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences, Vol. II-3/W4, 157-16410.5194/isprsannals-II-3-W4-157-2015Search in Google Scholar

Pawłuszek, K. & Borkowski, A. (2016). Landslides identification using airborne laser scanning data derived topographic terrain attributes and support vector machine classification. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, Vol. XLI-B8, 145-149, DOI:10.5194/isprsarchives-XLI-B8-145-201610.5194/isprsarchives-XLI-B8-145-2016Search in Google Scholar

Poloprutský, Z., Cejpová, M. & Němcová, J. (2016). Non-destructive survey of archeological sites using airborne laser scanning and geophysical applications. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences,Vol. XLI-B5, 371-37610.5194/isprs-archives-XLI-B5-371-2016Search in Google Scholar

Rottensteiner, F. & Briese, C. (2002). A new method for building extraction in urban areas from high-resolution LiDAR data. The International Archives of Photogrammetry and Remote Sensing, XXXIV(3A), 295-301Search in Google Scholar

Rottensteiner, F. (2008). Automated updating of building data bases from digital surface models and multi-spectral images: potential and limitations. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XXXVII (B3a), 265-270Search in Google Scholar

Tomljenovic, I., Höfle, B., Tiede, D. & Blaschke, T. (2015). Building extraction from airborne laser scanning data: an analysis of the state of the art. Remote Sensing, 7(4), 3826-386210.3390/rs70403826Search in Google Scholar

Viterbi, A.J. (1967). Error bounds for convolutional codes and an asymptotically optimum decoding algorithm. IEEE Transactions on Information Theory, Vol. 13 (2), 260-269.10.1109/TIT.1967.1054010Search in Google Scholar

Vosselman, G., Gorte, B.G.H. & Sithole, G. (2004). Change detection for updating medium scale maps using laser altimetry. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XXXV(B3), 207-212Search in Google Scholar

Wang, J., Lehrbass, B. & Zeng, Ch. (2011). Urban mapping using LiDAR and reliefcorrected colour-infrared aerial images. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XXXIV, 1-4Search in Google Scholar

Wei, S. (2014). Delineation of building footprint outlines derived from vertical structures in airborne LiDAR point clouds. The address: https://www.itc.nl/library/papers_2014/msc/gfm/sun.pdfSearch in Google Scholar

Wei, S. (2008). Building boundary extraction based on lidar point clouds data. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XXXVII (B3b), 157-162Search in Google Scholar

Yuan, J. (2016). Automatic building extraction in aerial scenes using convolutional networks. arXiv:1602.06564Search in Google Scholar

Zhang, K., Yan, J., Chen, Schu-Ch. (2006). Automatic construction of building footprints from airborne LiDAR data. IEEE Transactions on Geoscience and Remote Sensing, Vol.44 (9), 2523-253310.1109/TGRS.2006.874137Search in Google Scholar

Zhao, J., You, S. & Huang, J. ( 2011). Rapid extraction and updating of road network from airborne LiDAR data. Proceedings of IEEE Applied Imagery Pattern Recognition Workshop (AIPR),1-7Search in Google Scholar

eISSN:
2391-8152
Sprache:
Englisch
Zeitrahmen der Veröffentlichung:
Volume Open
Fachgebiete der Zeitschrift:
Informatik, andere, Geowissenschaften, Geodäsie, Kartografie und Photogrammetrie