PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 19, 2026ISPRS International Journal of Geo-Information0 citationsOpen Access

Fine-Scale and Population-Weighted PM2.5 Modeling in Melbourne: Towards Detailed Urban Exposure Mapping

View Full Paper
JGJun GaoXMXuying MaQSQian Chayn Sun

Key Points

  • The research aims to quantify fine-scale PM2.5 exposure and its demographic disparities in Greater Melbourne.
  • Integrated PM2.5 observations from regulatory stations and low-cost sensors.
  • Developed a land use regression model for 100 m resolution estimates.
  • Applied hybrid modeling combining Spatially Explicit Random Forest and Geographically Weighted Regression.
  • Utilized socio-demographic and environmental data from the Synthesized Multi-Dimensional Environmental Exposure Database.
  • Population-weighted PM2.5 exposure ranged from 5 to 7 µg/m3, surpassing WHO guidelines.
  • GWR model outperformed previous models with an R2 of 0.65, highlighting spatial non-stationarity.
  • Exposure hotspots identified in socioeconomically disadvantaged neighborhoods and areas of high socio-economic status.

Abstract

Despite concern over air pollution, fine-scale spatial and demographic disparities in exposure remain largely unquantified in Australian cities due to sparse monitoring and coarse models. In Greater Melbourne, this gap limits neighbourhood-level assessment of PM2.5 exposure and associated environmental inequalities. To address this gap, we integrated 6-month averaged PM2.5 observations (October 2023 to March 2024) from 5 regulatory monitoring stations and 13 low-cost sensors (LCSs) to develop a land use regression (LUR) model estimating concentrations at a 100 m resolution. These estimates were used to calculate population-weighted PM2.5 exposure (PWE) at the mesh block level across Melbourne. To examine factors associated with spatial heterogeneity in PWE, we applied a hybrid modeling framework combining Spatially Explicit Random Forest (Spatial-RF) and Geographically Weighted Regression (GWR), incorporating physical, built-environment, and socio-demographic variables from the Synthesized Multi-Dimensional Environmental Exposure Database (SEED). The Spatial-RF model initially exhibited an R2 of 0.56. After multicollinearity diagnostics using the Variance Inflation Factor (VIF), three key explanatory variables were selected for GWR modeling: the Normalized Difference Vegetation Index (NDVI), the Index of Education and Occupation (IEO), and the proportion of culturally and linguistically diverse populations (CALDP). The developed GWR model achieved higher model performance (R2 = 0.65) than Spatial-RF and global Ordinary Least Squares (OLS) regression (R2 = 0.38), revealing strong spatial non-stationarity. Results show that PWE generally ranged from 5 to 7 µg/m3, exceeding the 2021 WHO air quality guideline, with hotspots in the urban core and along major transport corridors. Elevated exposure occurred in both socioeconomically disadvantaged areas and residents in urban centers with higher socio-economic status, reflecting complex, spatially contingent exposure inequalities. These findings support fine-scale, equity-oriented air quality management.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Gao et al. (2026) studied this question.

synapsesocial.com/papers/69bb928c496e729e6297feedhttps://doi.org/10.3390/ijgi15030134
Ask AI
Helpful
Bookmark
Share
View Full Paper