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  4. Ben-ge: Extending BigEarthNet with Geographical and Environmental Data
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Ben-ge: Extending BigEarthNet with Geographical and Environmental Data

Type
conference contribution
Date Issued
2023-07-04T14:17:54Z
Author(s)
Michael Mommert  
;
Nicolas Kesseli  
;
Joëlle Hanna  
;
Linus Mathias Scheibenreif  
;
Damian Borth  
;
Begum Demir
Abstract
Deep learning methods have proven to be a powerful tool in the analysis of
large amounts of complex Earth observation data. However, while Earth
observation data are multi-modal in most cases, only single or few modalities
are typically considered. In this work, we present the ben-ge dataset, which
supplements the BigEarthNet-MM dataset by compiling freely and globally
available geographical and environmental data. Based on this dataset, we
showcase the value of combining different data modalities for the downstream
tasks of patch-based land-use/land-cover classification and land-use/land-cover
segmentation. ben-ge is freely available and expected to serve as a test bed
for fully supervised and self-supervised Earth observation applications.
Keywords
cs.CV
Event Title
IGARSS 2023
URL
https://www.alexandria.unisg.ch/handle/20.500.14171/118742
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