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An Automated Technique for Generating Georectified Mosaics from Ultra-High Resolution Unmanned Aerial Vehicle (UAV) Imagery, Based on Structure from Motion (SfM) Point Clouds

Remote Sensing · 2012 · Vol. 4(5) · pp. 1392–1410
Darren TurnerArko LucieerChristopher Watson

Abstract

Unmanned Aerial Vehicles (UAVs) are an exciting new remote sensing tool capable of acquiring high resolution spatial data. Remote sensing with UAVs has the potential to provide imagery at an unprecedented spatial and temporal resolution. The small footprint of UAV imagery, however, makes it necessary to develop automated techniques to geometrically rectify and mosaic the imagery such that larger areas can be monitored. In this paper, we present a technique for geometric correction and mosaicking of UAV photography using feature matching and Structure from Motion (SfM) photogrammetric techniques. Images are processed to create three dimensional point clouds, initially in an arbitrary model space. The point clouds are transformed into a real-world coordinate system using either a direct georeferencing technique that uses estimated camera positions or via a Ground Control Point (GCP) technique that uses automatically identified GCPs within the point cloud. The point cloud is then used to generate a Digital Terrain Model (DTM) required for rectification of the images. Subsequent georeferenced images are then joined together to form a mosaic of the study area. The absolute spatial accuracy of the direct technique was found to be 65–120 cm whilst the GCP technique achieves an accuracy of approximately 10–15 cm.

Remote Sensing and LiDAR Applications3D Surveying and Cultural HeritageRobotics and Sensor-Based LocalizationPoint cloudPhotogrammetryRemote sensingComputer scienceComputer visionStructure from motionArtificial intelligenceTerrainGeoreferenceGeography

Funding

  • Australian Antarctic Division
Citations
732
FWCI
27.23
field-weighted impact
References
30
Percentile
100%
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References
Modeling the World from Internet Photo Collections
International Journal of Computer Vision · 2007 · 2,152 citations
Accurate, Dense, and Robust Multiview Stereopsis
IEEE Transactions on Pattern Analysis and Machine Intelligence · 2009 · 2,987 citations
Thermal and Narrowband Multispectral Remote Sensing for Vegetation Monitoring From an Unmanned Aerial Vehicle
IEEE Transactions on Geoscience and Remote Sensing · 2009 · 1,304 citations
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