Geographic Information Systems to Assess External Validity in Randomized Trials

被引:2
作者
Savoca, Margaret R. [1 ]
Ludwig, David A. [2 ,3 ]
Jones, Stedman T. [1 ]
Clodfelter, K. Jason [4 ]
Sloop, Joseph B. [4 ]
Bollhalter, Linda Y. [1 ]
Bertoni, Alain G. [1 ,5 ]
机构
[1] Wake Forest Sch Med, Div Publ Hlth Sci, Dept Epidemiol & Prevent, Winston Salem, NC 27157 USA
[2] Univ Miami, Dept Pediat, Leonard M Miller Sch Med, Div Pediat Clin Res, Miami, FL 33152 USA
[3] Univ Miami, Leonard M Miller Sch Med, Div Biostat, Publ Hlth Sci, Miami, FL USA
[4] MapForsyth City Cty Geog Informat Off, Winston Salem, NC USA
[5] Wake Forest Sch Med, Maya Angelou Ctr Hlth Equ, Winston Salem, NC USA
关键词
PUBLIC-HEALTH; NEIGHBORHOOD CHARACTERISTICS; CLINICAL-PRACTICE; PHYSICAL-ACTIVITY; UNITED-STATES; US ADULTS; GIS; OBESITY; INTERVENTIONS; TRENDS;
D O I
10.1016/j.amepre.2017.01.001
中图分类号
R1 [预防医学、卫生学];
学科分类号
1004 ; 120402 ;
摘要
Introduction: To support claims that RCTs can reduce health disparities (i.e., are translational), it is imperative that methodologies exist to evaluate the tenability of external validity in RCTs when probabilistic sampling of participants is not employed. Typically, attempts at establishing post hoc external validity are limited to a few comparisons across convenience variables, which must be available in both sample and population. A Type 2 diabetes RCT was used as an example of a method that uses a geographic information system to assess external validity in the absence of a priori probabilistic community-wide diabetes risk sampling strategy. Methods: A geographic information system, 2009-2013 county death certificate records, and 20132014 electronic medical records were used to identify community-wide diabetes prevalence. Color-coded diabetes density maps provided visual representation of these densities. Chi-square goodness of fit statistic/analysis tested the degree to which distribution of RCT participants varied across density classes compared to what would be expected, given simple random sampling of the county population. Analyses were conducted in 2016. Results: Diabetes prevalence areas as represented by death certificate and electronic medical records were distributed similarly. The simple random sample model was not a good fit for death certificate record (chi-square, 17.63; p=0.0001) and electronic medical record data (chi-square, 28.92; p<0.0001). Generally, RCT participants were oversampled in high-diabetes density areas. Conclusions: Location is a highly reliable "principal variable" associated with health disparities. It serves as a directly measurable proxy for high-risk underserved communities, thus offering an effective and practical approach for examining external validity of RCTs. (C) 2017 American Journal of Preventive Medicine. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:252 / 259
页数:8
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