2006
DOI: 10.1080/10473289.2006.10464542
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A Land Use Regression Model for Predicting Ambient Concentrations of Nitrogen Dioxide in Hamilton, Ontario, Canada

Abstract: This paper reports on the development of a land use regression (LUR) model for predicting the intraurban variation of traffic-related air pollution in Hamilton, Ontario, Canada, an industrial city at the western end of Lake Ontario. Although land use regression has been increasingly used to characterize exposure gradients within cities, research to date has yet to test whether this method can produce reliable estimates in an industrialized location. Ambient concentrations of nitrogen dioxide (NO 2 ) were measu… Show more

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Cited by 108 publications
(88 citation statements)
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“…The method is cost effective , captures greater spatial variability than air quality monitoring networks (Brauer et al, 2003;Sahsuvaroglu et al, 2006;Henderson et al, 2007) and performs well in comparison to other methods, such as dispersion modeling (Cyrys et al, 2005;Jerrett et al, 2005) and spatial interpolation . In addition, LUR offers practical advantages over these other approaches.…”
Section: Introductionmentioning
confidence: 98%
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“…The method is cost effective , captures greater spatial variability than air quality monitoring networks (Brauer et al, 2003;Sahsuvaroglu et al, 2006;Henderson et al, 2007) and performs well in comparison to other methods, such as dispersion modeling (Cyrys et al, 2005;Jerrett et al, 2005) and spatial interpolation . In addition, LUR offers practical advantages over these other approaches.…”
Section: Introductionmentioning
confidence: 98%
“…Regression methods are used to model pollutant concentrations measured at given sites on the basis of variables that characterize their surrounding land use, population density and traffic patterns, as described elsewhere Sahsuvaroglu et al, 2006;Henderson et al, 2007).…”
Section: Introductionmentioning
confidence: 99%
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