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Revealing building operating carbon dynamics for multiple cities
Engineering and TechnologyNature Sustainability

Revealing building operating carbon dynamics for multiple cities

W. Yap, A. N. Wu, et al.

Cities chasing carbon neutrality often lack insight into how buildings and their surroundings drive emissions. We introduce a generalizable open science framework that combines building energy-consumption data, multi-modal geospatial inputs and graph deep learning to quantify operating emissions and their links to urban form and socio-economic factors across five diverse cities, explaining 78.4% of emission variation. This research was conducted by Authors present in <Authors> tag.... show more
Abstract
Achieving carbon neutrality is a critical yet elusive goal for many cities, hindered by limited understanding of the relationship between building emissions and their surroundings. To address this challenge, we present a generalizable open science framework that integrates building energy-consumption data, multi-modal geospatial inputs and graph deep learning to quantify building operating emissions and their links to urban form and socio-economic factors. Applying this approach to five cities with diverse climates and planning contexts—Melbourne, New York City (Manhattan), Seattle, Singapore and Washington DC—we demonstrate that our models explain 78.4% of the variation in building operating carbon emissions across cities, achieving state-of-the-art accuracy for urban-scale energy modelling. Our findings reveal strong connections between a city's planning history and its building carbon profile, alongside stark inequalities where wealthier areas often exhibit the highest per capita emissions. Additionally, the relationship between urban density and building emissions is complex and city specific, with emissions extending beyond dense urban cores into suburban areas. To design effective decarbonization strategies, cities must consider how their planning histories, urban layouts and economic conditions shape current emissions patterns.
Publisher
Nature Sustainability
Published On
Aug 15, 2025
Authors
Winston Yap, Abraham Noah Wu, Clayton Miller, Filip Biljecki
Tags
building operating emissionsgraph deep learningmulti-modal geospatial dataurban formsocio-economic factorsurban-scale energy modellingcarbon neutrality
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