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Statistical Validation of a Web-Based GIS Application and Its Applicability to Cardiovascular-Related Studies

机译:基于Web的GIS应用程序的统计验证及其在心血管相关研究中的适用性

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摘要

Purpose: There is abundant evidence that neighborhood characteristics are significantly linked to the health of the inhabitants of a given space within a given time frame. This study is to statistically validate a web-based GIS application designed to support cardiovascular-related research developed by the NIH funded Research Centers in Minority Institutions (RCMI) Translational Research Network (RTRN) Data Coordinating Center (DCC) and discuss its applicability to cardiovascular studies. Methods: Geo-referencing, geocoding and geospatial analyses were conducted for 500 randomly selected home addresses in a U.S. southeastern Metropolitan area. The correlation coefficient, factor analysis and Cronbach’s alpha (α) were estimated to quantify measures of the internal consistency, reliability and construct/criterion/discriminant validity of the cardiovascular-related geospatial variables (walk score, number of hospitals, fast food restaurants, parks and sidewalks). Results: Cronbach’s α for CVD GEOSPATIAL variables was 95.5%, implying successful internal consistency. Walk scores were significantly correlated with number of hospitals (r = 0.715; p < 0.0001), fast food restaurants (r = 0.729; p < 0.0001), parks (r = 0.773; p < 0.0001) and sidewalks (r = 0.648; p < 0.0001) within a mile from homes. It was also significantly associated with diversity index (r = 0.138, p = 0.0023), median household incomes (r = −0.181; p < 0.0001), and owner occupied rates (r = −0.440; p < 0.0001). However, its non-significant correlation was found with median age, vulnerability, unemployment rate, labor force, and population growth rate. Conclusion: Our data demonstrates that geospatial data generated by the web-based application were internally consistent and demonstrated satisfactory validity. Therefore, the GIS application may be useful to apply to cardiovascular-related studies aimed to investigate potential impact of geospatial factors on diseases and/or the long-term effect of clinical trials.
机译:目的:有大量证据表明,邻居特征与给定时间范围内给定空间的居民的健康状况显着相关。这项研究旨在对基于网络的GIS应用进行统计验证,该应用旨在支持由NIH资助的少数民族机构研究中心(RCMI)转化研究网络(RTRN)数据协调中心(DCC)开发的心血管相关研究,并讨论其在心血管方面的适用性学习。方法:对美国东南部都会区的500个随机选择的家庭住址进行了地理参考,地理编码和地理空间分析。估计相关系数,因子分析和Cronbach'sα(α)来量化与心血管有关的地理空间变量(步行得分,医院数量,快餐店,公园的内部一致性,可靠性和构造/判据/判别有效性的度量)和人行道)。结果:Cronbach的CVD GEOSPATIAL变量的α为95.5%,表明内部一致性良好。步行得分与医院数量(r = 0.715; p <0.0001),快餐店(r = 0.729; p <0.0001),公园(r = 0.773; p <0.0001)和人行道(r = 0.648; p)显着相关。 <0.0001),距离房屋不到1英里。它也与多样性指数(r = 0.138,p = 0.0023),家庭中位数收入(r = -0.181; p <0.0001)和所有者居住率(r = -0.440; p <0.0001)显着相关。但是,它与中位年龄,脆弱性,失业率,劳动力和人口增长率之间没有显着相关性。结论:我们的数据表明,基于Web的应用程序生成的地理空间数据在内部是一致的,并显示出令人满意的有效性。因此,GIS应用程序可用于心血管相关研究,旨在研究地理空间因素对疾病的潜在影响和/或临床试验的长期影响。

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