Type: Article
Title: Semantic enrichment of 3D city models via roof material classification for urban greening and heat island mitigation
Authors: Kanna, Elmehdi 
Matijevic, Jannik
Arzoumanidis, Lukas 
Nguyen, Huynh Duc An Son
Dehbi, Youness 
Issue Date: 1-Oct-2026
Keywords: Roof material classification; Semantic enrichment; CityGML; Urban heat island; Land surface temperature
Abstract: 
Semantic enrichment extends 3D city models, which already encode object-level semantics such as building parts and surfaces, with thematic attributes that make them suitable for a broad range of urban analyses, and building energy and microclimate studies. This article addresses a frequently missing but vital attribute in such models, namely roof material, by combining high resolution RGB image classification with footprint guided background suppression. Building footprints from OpenStreetMap (OSM) are rasterised into masks that remove non-roof pixels, allowing the classifier to focus on material cues rather than surrounding urban context. An image classification network is then trained to distinguish five roof material classes. Predicted materials are written back into a semantically and geometrically rich City Geography Markup Language (CityGML) dataset as per-building attributes and used to drive a streamlined urban heat island screening workflow. This enables estimation of baseline roof temperatures as well as scenario-based changes under cool-roof and green-roof substitutions. A citywide greening simulation of suitable roof candidates across Hamburg (Germany), Paris (France), and Madrid (Spain) indicates an overall cooling on roofs of approximately 0.83 K across Hamburg, 0.16 K across Paris, and 0.6 K across Madrid in the most favorable scenarios. The proposed pipeline is data-efficient, reproducible, and deployable at city scale. To the best of the authors’ knowledge, this is the first pipeline to explicitly combine footprint-guided roof material classification with city-scale urban heat island screening on CityGML data in a single end-to-end workflow. The full pipeline code is available at: Github.
Subject Class (DDC): 550: Geowissenschaften
HCU-Faculty: Computational Methods 
Journal or Series Name: Sustainable Cities and Society 
Volume: 149
Publisher: Elsevier Ltd.
ISSN: 22106707
Publisher DOI: 10.1016/j.scs.2026.107734
URN (Citation Link): urn:nbn:de:gbv:1373-repos-17019
Directlink: https://repos.hcu-hamburg.de/handle/hcu/1290
Funded by: Next Generation City Networking
Bundesministerium für Verkehr
Language: English
Creative Commons License: https://creativecommons.org/licenses/by/4.0/
Appears in CollectionPublikationen (mit Volltext)

Files in This Item:
File Description SizeFormat
1-s2.0-S2210670726006177-main.pdf7.83 MBAdobe PDFView/Open
Staff view

Page view(s)

8
checked on Sep 20, 2026

Google ScholarTM

Check

Export

This item is licensed under a Creative Commons License Creative Commons