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Concordance of Commercial Data Sources for Neighborhood-Effects Studies

机译:商业数据源与邻里效应研究的一致性

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摘要

Growing evidence supports a relationship between neighborhood-level characteristics and important health outcomes. One source of neighborhood data includes commercial databases integrated with geographic information systems to measure availability of certain types of businesses or destinations that may have either favorable or adverse effects on health outcomes; however, the quality of these data sources is generally unknown. This study assessed the concordance of two commercial databases for ascertaining the presence, locations, and characteristics of businesses. Businesses in the St. Louis, Missouri area were selected based on their four-digit Standard Industrial Classification (SIC) codes and classified into 14 business categories. Business listings in the two commercial databases were matched by standardized business name within specified distances. Concordance and coverage measures were calculated using capture–recapture methods for all businesses and by business type, with further stratification by census-tract-level population density, percent below poverty, and racial composition. For matched listings, distance between listings and agreement in four-digit SIC code, sales volume, and employee size were calculated. Overall, the percent agreement was 32% between the databases. Concordance and coverage estimates were lowest for health-care facilities and leisure/entertainment businesses; highest for popular walking destinations, eating places, and alcohol/tobacco establishments; and varied somewhat by population density. The mean distance (SD) between matched listings was 108.2 (179.0) m with varying levels of agreement in four-digit SIC (percent agreement = 84.6%), employee size (weighted kappa = 0.63), and sales volume (weighted kappa = 0.04). Researchers should cautiously interpret findings when using these commercial databases to yield measures of the neighborhood environment.
机译:越来越多的证据支持社区水平特征与重要健康结果之间的关系。邻里数据的一种来源包括与地理信息系统集成的商业数据库,以测量可能对健康结果产生有利或不利影响的某些类型的企业或目的地的可用性;但是,这些数据源的质量通常是未知的。这项研究评估了两个商业数据库在确定企业的存在,位置和特征方面的一致性。密苏里州圣路易斯地区的企业是根据其四位数的标准工业分类(SIC)代码选择的,并分为14个业务类别。在指定距离内,两个商业数据库中的企业列表与标准化企业名称匹配。使用捕获-捕获方法对所有企业和企业类型计算一致性和覆盖率度量,并按人口普查级人口密度,贫困率和种族构成进一步分层。对于匹配的列表,计算了四位数的SIC代码中的列表与协议之间的距离,销量和员工人数。总体而言,数据库之间的一致性百分比为32%。卫生保健设施和休闲/娱乐业务的一致性和覆盖率估计值最低;对于热门的步行目的地,饮食场所和酒精/烟草场所而言,最高;并且因人口密度而有所不同。匹配列表之间的平均距离(SD)为108.2(179.0)m,其中四位数字的SIC中的协议级别不同(协议百分比= 84.6%),员工人数(加权kappa = 0.63)和销量(加权kappa = 0.04) )。研究人员在使用这些商业数据库来生成邻域环境的度量值时,应谨慎解释研究结果。

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