Quantifying traffic exposure

被引:14
作者
Pratt, Gregory C. [1 ]
Parson, Kris [1 ]
Shinoda, Naomi [2 ]
Lindgren, Paula [2 ]
Dunlap, Sara [2 ]
Yawn, Barbara [3 ]
Wollan, Peter [3 ]
Johnson, Jean [2 ]
机构
[1] Minnesota Pollut Control Agcy, St Paul, MN 55155 USA
[2] Minnesota Dept Hlth, St Paul, MN USA
[3] Olmsted Med Ctr, Rochester, MN USA
关键词
traffic; density; land-use regression; geographic information system; global positioning system; ROCHESTER EPIDEMIOLOGY PROJECT; FINE PARTICULATE MATTER; LAND-USE REGRESSION; AIR-POLLUTION; PERSONAL EXPOSURE; DISPERSION MODEL; NITROGEN-DIOXIDE; ASTHMA; DIESEL; HEALTH;
D O I
10.1038/jes.2013.51
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Living near traffic adversely affects health outcomes. Traffic exposure metrics include distance to high-traffic roads, traffic volume on nearby roads, traffic within buffer distances, measured pollutant concentrations, land-use regression estimates of pollution concentrations, and others. We used Geographic Information System software to explore a new approach using traffic count data and a kernel density calculation to generate a traffic density surface with a resolution of 50 m. The density value in each cell reflects all the traffic on all the roads within the distance specified in the kernel density algorithm. The effect of a given roadway on the raster cell value depends on the amount of traffic on the road segment, its distance from the raster cell, and the form of the algorithm. We used a Gaussian algorithm in which traffic influence became insignificant beyond 300 m. This metric integrates the deleterious effects of traffic rather than focusing on one pollutant. The density surface can be used to impute exposure at any point, and it can be used to quantify integrated exposure along a global positioning system route. The traffic density calculation compares favorably with other metrics for assessing traffic exposure and can be used in a variety of applications.
引用
收藏
页码:290 / 296
页数:7
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