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Böröcz, Balázs
Molnár, Gábor
Petőné Csuka, Ildikó
2025-12-04T12:59:51Z
2025-12-04T12:59:51Z
2025
http://hdl.handle.net/20.500.14044/36353
The recently released AlphaEarth Foundations Model was generated using multi-source satellite data (optical, radar, LiDAR, etc.) and consists of a 64-dimensional normalized vector for each 10m by 10m pixel on the whole globe for each year since 2017. This representation enables the use of cosine distance to quantify similarity between pixels in the parameter space. The model has been made available in Google Earth Engine, providing new opportunities for environmental monitoring. In this study, we revisited previous analyses of agricultural areas and bee pastures to evaluate the applicability of the new methodology. We compared its performance with earlier approaches based on machine learning classifiers and spectral indices calculations. Our results show that, in most cases, computations were significantly faster and required less code, while accuracy improved slightly compared to traditional methods. We also examined the spatial and temporal transferability of the approach, emphasizing its potential for broader applications in land monitoring.hu_HU
dc.formatPDFhu_HU
enhu_HU
First Experiences with the AlphaEarth Foundations Model: A Cosine Distance-Based Evaluationhu_HU
Open accesshu_HU
Óbudai Egyetemhu_HU
2025. November 13.hu_HU
Budapesthu_HU
Alba Regia Műszaki Karhu_HU
Óbudai Egyetemhu_HU
Műszaki tudományok - anyagtudományok és technológiákhu_HU
alphaearth foundations modelhu_HU
google earth enginehu_HU
cosine distancehu_HU
cosine distancehu_HU
satellite datahu_HU
land cover analysishu_HU
Konferenciaközleményhu_HU
PROCEEDINGS of 20th International Symposium on Applied Informatics and Related Areashu_HU
local.tempfieldCollectionsKönyvrészletekhu_HU
10.12700/AIS.2025.008
8.hu_HU
Kiadói változathu_HU
6 p.hu_HU
AIS 2025 20th International Symposium on Applied Informatics and Related Areashu_HU
978-963-449-405-8hu_HU
Óbudai Egyetemhu_HU
Budapesthu_HU


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