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Autorinnen/Autoren:
Schmitz, Matthias; Brandenburger, Wolfgang; Mayer, Helmut
Dokumenttyp:
Zeitschriftenartikel / Journal Article
Titel:
Semantic Segmentation of Airborne Images and Corresponding Digital Surface Models
Untertitel:
Additional input Data or Additional Task
Titel Konferenzpublikation:
ISPRS ICWG II/III PIA19+MRSS19 - Photogrammetric Image Analysis & Munich Remote Sensing Symposium: Joint ISPRS conference
Untertitel Konferenzpublikation:
18–20 September 2019, Munich, Germany
Serie/Reihe:
ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences
Band:
XLII-2/W16
Konferenztitel:
Photogrammetric Image Analysis (2019, München); Munich Remote Sensing Symposium (2019, München)
Tagungsort:
München
Jahr der Konferenz:
2019
Datum Beginn der Konferenz:
18.09.2019
Datum Ende der Konferenz:
20.09.2019
Jahr:
2019
Seitenbereich:
195-200
Sprache:
Englisch
Schlagwörter:
Convolutional Network ; Height Estimation ; Multi-Task Learning ; Semantic Segmentation
Abstract:
We analyze the effects of additional height data for semantic segmentation of aerial images with a convolutional encoder-decoder network. Besides a merely image-based semantic segmentation, we trained the same network with height as additional input and furthermore, we defined a multi-task model, where we trained the network to estimate the relative height of objects in parallel to semantic segmentation on the image data only. Our findings are, that excellent results are possible for image data...     »
ISSN:
1682-1750
DOI:
10.5194/isprs-archives-XLII-2-W16-195-2019
URL zum Inhalt:
https://www.int-arch-photogramm-remote-sens-spatial-inf-sci.net/XLII-2-W16/195/2019/isprs-archives-XLII-2-W16-195-2019.pdf
Fakultät:
Fakultät für Informatik
Institut:
INF 4 - Institut für Angewandte Informatik
Professorin/Professor:
Mayer, Helmut
Open Access:
Ja / Yes
Open-Access-Lizenz:
CC BY 4.0
URL zur Lizenz:
https://creativecommons.org/licenses/by/4.0/
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