Limitations of Remotely Sensed Aerosol as a Spatial Proxy for Fine Particulate Matter
- 1 June 2009
- journal article
- Published by Environmental Health Perspectives in Environmental Health Perspectives
- Vol. 117 (6) , 904-909
- https://doi.org/10.1289/ehp.0800360
Abstract
Recent research highlights the promise of remotely sensed aerosol optical depth (AOD) as a proxy for ground-level particulate matter with aerodynamic diameter <or= 2.5 microm (PM(2.5)). Particular interest lies in estimating spatial heterogeneity using AOD, with important application to estimating pollution exposure for public health purposes. Given the correlations reported between AOD and PM(2.5), it is tempting to interpret the spatial patterns in AOD as reflecting patterns in PM(2.5). We evaluated the degree to which AOD can help predict long-term average PM(2.5) concentrations for use in chronic health studies. We calculated correlations of AOD and PM(2.5) at various temporal aggregations in the eastern United States in 2004 and used statistical models to assess the relationship between AOD and PM(2.5) and the potential for improving predictions of PM(2.5) in a subregion, the mid-Atlantic. We found only limited spatial associations of AOD from three satellite retrievals with daily and yearly PM(2.5). The statistical modeling shows that monthly average AOD poorly reflects spatial patterns in PM(2.5) because of systematic, spatially correlated discrepancies between AOD and PM(2.5). Furthermore, when we included AOD as a predictor of monthly PM(2.5) in a statistical prediction model, AOD provided little additional information in a model that already accounts for land use, emission sources, meteorology, and regional variability. These results suggest caution in using spatial variation in currently available AOD to stand in for spatial variation in ground-level PM(2.5) in epidemiologic analyses and indicate that when PM(2.5) monitoring is available, careful statistical modeling outperforms the use of AOD.Keywords
This publication has 26 references indexed in Scilit:
- Spatio-temporal modeling of chronic PM10 exposure for the Nurses’ Health StudyAtmospheric Environment, 2008
- Remote sensing of ambient particles in Delhi and its environs: estimation and validationInternational Journal of Remote Sensing, 2008
- Factors influencing the spatial extent of mobile source air pollution impacts: a meta-analysisBMC Public Health, 2007
- Using aerosol optical thickness to predict ground-level PM2.5 concentrations in the St. Louis area: A comparison between MISR and MODISRemote Sensing of Environment, 2007
- Exposure assessment of particulate matter air pollution before, during, and after the 2003 Southern California wildfiresAtmospheric Environment, 2006
- Improving National Air Quality Forecasts with Satellite Aerosol ObservationsBulletin of the American Meteorological Society, 2005
- Model Evaluation and Spatial Interpolation by Bayesian Combination of Observations with Outputs from Numerical ModelsBiometrics, 2005
- Qualitative and quantitative evaluation of MODIS satellite sensor data for regional and urban scale air qualityAtmospheric Environment, 2004
- Intercomparison between satellite‐derived aerosol optical thickness and PM2.5 mass: Implications for air quality studiesGeophysical Research Letters, 2003
- Aerosol optical depth retrieval from GOES‐8: Uncertainty study and retrieval validation over South AmericaJournal of Geophysical Research: Atmospheres, 2002