Publication:
NDVI Time Series Reconstruction Using Morphological Filtering

dc.contributor.authorColiban, Radu-Mihai
dc.contributor.authorIvanovici, Mihai
dc.date.accessioned2025-10-13T13:46:31Z
dc.date.issued2025-10-13
dc.description.abstractTime series of Normalized Difference of Vegetation Index (NDVI) values, derived from satellite data, are useful for monitoring the vegetation status and can form a basis for more advanced analysis. However, data in these time series is affected by noise caused primarily by atmospheric conditions and acquisition errors, resulting in glitches and prompting the need for developing reconstruction techniques that can efficiently remove the noise. A multitude of approaches have been developed so far, including a variety of temporal-based methods that include filtering techniques. In this letter, a morphological filter with a non-flat structuring element is proposed for NDVI time series reconstruction. This method is applied on two time series obtained from the Copernicus Global Land Service 300 m NDVI product. The experimental results prove the effectiveness of the proposed approach in producing high-quality NDVI reconstructions, highlighted by the significantly better root mean square error (RMSE) values obtained on the considered time series in comparison with three well-established techniques.
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.doi10.1007/s40009-025-01833-w
dc.identifier.issn0250-541X
dc.identifier.issn2250-1754
dc.identifier.urihttps://repository.unitbv.ro/handle/123456789/2842
dc.publisherSpringer Science and Business Media LLC
dc.relation.ispartofNational Academy Science Letters
dc.titleNDVI Time Series Reconstruction Using Morphological Filtering
dc.typeArticle
dspace.entity.typePublication

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