Publication:
Spectral image data aggregation for multisource data augmentation

dc.contributor.authorLuca, Roberta
dc.contributor.authorBaicoianu, Alexandra
dc.contributor.authorPlajer, Ioana Cristina
dc.date.accessioned2025-09-09T10:40:26Z
dc.date.issued2025
dc.description.abstractMultispectral and hyperspectral images are increasingly popular in different research fields, such as remote sensing, astronomical imaging, or precision agriculture. However, the amount of free data available to perform machine learning tasks is relatively small. Moreover, artificial intelligence models developed in the area of spectral imaging require input images with a fixed spectral signature, expecting the data to have the same number of spectral bands or the same spectral resolution. This requirement significantly reduces the number of usable sources that can be used for a given model. The scope of this study is to introduce a methodology for spectral image data aggregation, in order to allow machine learning models to be trained and/or used on data from a larger number of sources, thus providing better generalization. For this purpose, we propose different interpolation techniques, in order to make multisource spectral data compatible with each other. The interpolation outcomes are evaluated through various approaches. This includes direct assessments using surface plots and metrics such as a Custom Mean Squared Error and the Normalized Difference Vegetation Index. Additionally, indirect evaluation is done by estimating their impact on machine learning model training, particularly for semantic segmentation.
dc.description.sponsorshipFunded by the European Union. The AI4AGRI project entitled “Romanian Excellence Center on Artificial Intelligence on Earth Observation Data for Agriculture” received funding from the European Union’s Horizon Europe research and innovation program under grant agreement no. [101079136].
dc.identifier.doi10.1080/22797254.2025.2492295
dc.identifier.urihttps://repository.unitbv.ro/handle/123456789/694
dc.language.isoen
dc.publisherEuropean Journal of Remote Sensing
dc.subjectSpectral images
dc.subjectinterpolation
dc.subjectdata aggregation
dc.subjectmultisource data
dc.subjectneural networks
dc.titleSpectral image data aggregation for multisource data augmentation
dc.typeArticle
dspace.entity.typePublication

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