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Journal Article

Mapping Invasive Lupinus polyphyllus Lindl. in Semi-natural Grasslands Using Object-Based Image Analysis of UAV-borne Images

Jayan Wijesingha; Thomas Astor; Damian Schulze-Brüninghoff; Michael Wachendorf
PFG – Journal of Photogrammetry, Remote Sensing and Geoinformation Science · Vol. 88, Issue 5 · pp. 391-406 · 2020

Abstract

Knowledge on the spatio-temporal distribution of invasive plant species is vital to maintain biodiversity in grasslands which are threatened by the invasion of such plants and to evaluate the effect of control activities conducted. Manual digitising of aerial images with field verification is the standard method to create maps of the invasive Lupinus polyphyllus Lindl. (Lupine) in semi-natural grasslands of the UNESCO biosphere reserve “Rhön”. As the standard method is labour-intensive, a workflow was developed to map lupine coverage using an unmanned aerial vehicle (UAV)-borne remote sensing (RS) along with object-based image analysis (OBIA). UAV-borne red, green, blue and thermal imaging, as well as photogrammetric canopy height modelling (CHM) were applied. Images were segmented by unsupervised parameter optimisation into image objects representing lupine plants and grass vegetation. Image objects obtained were classified using random forest classification modelling based on objects’ attributes. The classification model was employed to create lupine distribution maps of test areas, and predicted data were compared with manually digitised lupine coverage maps. The classification models yielded a mean prediction accuracy of 89%. The maximum difference in lupine area between classified and digitised lupine maps was 5%. Moreover, the pixel-wise map comparison showed that 88% of all pixels matched between classified and digitised maps. Our results indicated that lupine coverage mapping using UAV-borne RS data and OBIA provides similar results as the standard manual digitising method and, thus, offers a valuable tool to map invasive lupine on grasslands.

Bibliographic Information

JournalPFG – Journal of Photogrammetry, Remote Sensing and Geoinformation Science
PublisherSpringer
Publication Date2020-10-01
Publication Year2020
Volume88
Issue5
Pages391-406
Document TypeJournal Article
Print ISSN2512-2789
eISSN2512-2819
DOI10.1007/s41064-020-00121-0

Access Information

NARA Access Coverage2017-01-01~Current
Journal Homepagehttps://www.springer.com/journal/41064
Publisher PageOpen Publisher Page
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