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Using Building Heights and Street Configuration to Enhance Intraurban PM_(10), NO_x, and NO_2 Land Use Regression Models

机译:使用建筑物高度和街道配置来增强城市内PM_(10),NO_x和NO_2土地利用回归模型

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摘要

Land use regression (LUR) models have been widely used to provide long-term air pollution exposure assessment in epidemiological studies. However, models have rarely offered variables that account for the dispersion environment close to the source (e.g., street canyons, position and dimensions of buildings, road width). This study used newly available data on building heights and geometry to enhance the representation of land use and the dispersion field in LUR. Models were developed for PM_(10), NO_x and NO_2 for 2008-2011 for London, U.K. A separate set of models using "traditional" land use and traffic indicators (e.g., distance from road, area of housing within circular buffers) were also developed and their performance was compared with "enhanced" models. Models were evaluated using leave-one-out (n - 1) (LOOCV) and grouped (n - 25%) cross -validation (GCV). LOOCV R~2 values were 0.71, 0.50, 0.66 and 0.73, 0.79, 0.78 for traditional and enhanced PM_(10), NO_x, and NO_2 models, respectively. GCV R~2 values were 0.71, 0.53, 0.64 and 0.68, 0.77, 0.77 for traditional and enhanced PM_(10), NO_x, and NO_2 models, respectively. Data on building volume within the area common to a 20 m road buffer within a 25 m circular buffer substantially improved the performance (R~2 > 13%) of NO_x and NO_2 LUR models.
机译:土地利用回归(LUR)模型已被广泛用于流行病学研究中的长期空气污染暴露评估。但是,模型很少提供变量来说明靠近源头的分散环境(例如,街道峡谷,建筑物的位置和尺寸,道路宽度)。这项研究使用了有关建筑物高度和几何形状的最新可用数据,以增强LUR中土地利用和分散场的表示。为英国伦敦的PM_(10),NO_x和NO_2开发了2008-2011年的模型。另外一组使用“传统”土地使用和交通指标(例如,距道路的距离,圆形缓冲区内房屋面积)的模型开发并与“增强型”模型进行了比较。使用留一法(n-1)(LOOCV)和分组(n-25%)交叉验证(GCV)评估模型。对于传统和增强型PM_(10),NO_x和NO_2模型,LOOCV R〜2值分别为0.71、0.50、0.66和0.73、0.79、0.78。对于传统和增强型PM_(10),NO_x和NO_2模型,GCV R〜2值分别为0.71、0.53、0.64和0.68、0.77、0.77。 25 m环形缓冲区内20 m道路缓冲区共有的区域内建筑体积数据大大提高了NO_x和NO_2 LUR模型的性能(R〜2> 13%)。

著录项

  • 来源
    《Environmental Science & Technology》 |2013年第20期|11643-11650|共8页
  • 作者单位

    Small Area Health Statistics Unit, MRC-PHE Centre for Environment and Health, School of Public Health, Imperial College London,St Mary's campus, London, W2 1PG, United Kingdom;

    Small Area Health Statistics Unit, MRC-PHE Centre for Environment and Health, School of Public Health, Imperial College London,St Mary's campus, London, W2 1PG, United Kingdom;

    Small Area Health Statistics Unit, MRC-PHE Centre for Environment and Health, School of Public Health, Imperial College London,St Mary's campus, London, W2 1PG, United Kingdom;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-17 14:02:15

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