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AgriPotential: A Novel Multi-Spectral and Multi-Temporal Remote Sensing Dataset for Agricultural Potentials

Published: June 13, 2025 | arXiv ID: 2506.11740v1

By: Mohammad El Sakka , Caroline De Pourtales , Lotfi Chaari and more

Potential Business Impact:

Helps farmers know which crops grow best where.

Business Areas:
AgTech Agriculture and Farming

Remote sensing has emerged as a critical tool for large-scale Earth monitoring and land management. In this paper, we introduce AgriPotential, a novel benchmark dataset composed of Sentinel-2 satellite imagery spanning multiple months. The dataset provides pixel-level annotations of agricultural potentials for three major crop types - viticulture, market gardening, and field crops - across five ordinal classes. AgriPotential supports a broad range of machine learning tasks, including ordinal regression, multi-label classification, and spatio-temporal modeling. The data covers diverse areas in Southern France, offering rich spectral information. AgriPotential is the first public dataset designed specifically for agricultural potential prediction, aiming to improve data-driven approaches to sustainable land use planning. The dataset and the code are freely accessible at: https://zenodo.org/records/15556484

Repos / Data Links

Page Count
7 pages

Category
Computer Science:
CV and Pattern Recognition