AI RESEARCH
YieldSAT: A Multimodal Benchmark Dataset for High-Resolution Crop Yield Prediction
arXiv CS.CV
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ArXi:2604.00940v1 Announce Type: new Crop yield prediction requires substantial data to train scalable models. However, creating yield prediction datasets is constrained by high acquisition costs, heterogeneous data quality, and data privacy regulations. Consequently, existing datasets are scarce, low in quality, or limited to regional levels or single crop types, hindering the development of scalable data-driven solutions. In this work, we release YieldSAT, a large, high-quality, and multimodal dataset for high-resolution crop yield prediction.