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The importance of accurate road data for spatial applications in public health: customizing a road network

机译:准确道路数据对于公共卫生空间应用的重要性:自定义道路网络

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Background Health researchers have increasingly adopted the use of geographic information systems (GIS) for analyzing environments in which people live and how those environments affect health. One aspect of this research that is often overlooked is the quality and detail of the road data and whether or not it is appropriate for the scale of analysis. Many readily available road datasets, both public domain and commercial, contain positional errors or generalizations that may not be compatible with highly accurate geospatial locations. This study examined the accuracy, completeness, and currency of four readily available public and commercial sources for road data (North Carolina Department of Transportation, StreetMap Pro, TIGER/Line 2000, TIGER/Line 2007) relative to a custom road dataset which we developed and used for comparison. Methods and Results A custom road network dataset was developed to examine associations between health behaviors and the environment among pregnant and postpartum women living in central North Carolina in the United States. Three analytical measures were developed to assess the comparative accuracy and utility of four publicly and commercially available road datasets and the custom dataset in relation to participants' residential locations over three time periods. The exclusion of road segments and positional errors in the four comparison road datasets resulted in between 5.9% and 64.4% of respondents lying farther than 15.24 meters from their nearest road, the distance of the threshold set by the project to facilitate spatial analysis. Agreement, using a Pearson's correlation coefficient, between the customized road dataset and the four comparison road datasets ranged from 0.01 to 0.82. Conclusion This study demonstrates the importance of examining available road datasets and assessing their completeness, accuracy, and currency for their particular study area. This paper serves as an example for assessing the feasibility of readily available commercial or public road datasets, and outlines the steps by which an improved custom dataset for a study area can be developed.
机译:背景技术卫生研究人员越来越多地使用地理信息系统(GIS)来分析人们所居住的环境以及这些环境如何影响健康。该研究经常被忽视的一个方面是道路数据的质量和细节,以及它是否适合于分析规模。许多容易获得的道路数据集,包括公共领域和商业领域,都包含可能与高精度地理空间位置不兼容的位置误差或概括。这项研究相对于我们开发的自定义道路数据集,研究了四个易于获得的道路数据的公共和商业来源(北卡罗来纳州交通部,StreetMap Pro,TIGER / Line 2000,TIGER / Line 2007)的准确性,完整性和时效性。并用于比较。方法和结果开发了一个定制的道路网络数据集,以研究居住在美国北卡罗来纳州中部的孕妇和产后妇女的健康行为与环境之间的关联。开发了三种分析方法来评估四个公共和商业道路数据集和自定义数据集相对于参与者在三个时间段内的住所的相对准确性和实用性。在四个比较道路数据集中排除路段和位置误差,导致距最近道路15.24米远的受访者介于5.9%和64.4%之间,该距离是项目为方便空间分析而设置的阈值距离。使用皮尔逊相关系数,自定义道路数据集和四个比较道路数据集之间的一致性在0.01到0.82之间。结论本研究表明检查特定道路数据集并评估其特定研究区域的完整性,准确性和时效性的重要性。本文作为评估现成的商业或公共道路数据集可行性的示例,并概述了可以为研究区域开发改进的自定义数据集的步骤。

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