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Building Energy Estimation Using Machine Learning: Rennes Use Case

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EU Open Research Repository

@zenodo.oai_zenodo_org_15789521

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Zenodo

Dataset Description

This CSV file contains building-level energy demand estimations for the city of Rennes, computed using the XGboost, a tree based Machine Learning approach. The model uses buildings "number_of_levels", "area_of_heat_loss_opaque_vertical_walls", "year_of_construction" as input features. This dataset is an output of FAIRiCUBE Use Case 4 (UC4): Spatial and temporal assessment of neighbourhood building stock, which aims to evaluate energy consumption and material stocks in urban environments using harmonized methods across European cities.
Publisher name: Zenodo
Last updated: 2026-02-20T14:39:46Z


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