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Predictors of COVID-19 testing rates: A cross-country comparison

机译:Covid-19测试率的预测因素:越野比较

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Objectives Cross-country comparisons of coronavirus disease (COVID-19) have largely been applied to mortality analyses. The goal of this analysis is to explore predictors of COVID-19 testing through cross-country comparisons, to better inform international health policies. Methods Testing and case-based data were amassed from Our World in Data, and information regarding predictors was gathered from the World Bank. We investigate Human Development Index (HDI), health expenditure, universal health coverage (UHC), urban population, service industry workers (%), and air pollution as predictors. We explored testing data through July 31, 2020, or most recently available, using case-indexing methods, which involve synchronizing countries by date of first reported COVID-19 case as an index date and normalizing to the cumulative tests 25 days post-index date. Three multivariable linear regression models were built in a stepwise fashion to explore the association between the indexed number of COVID-19 tests and HDI scores. Results A total of 86 countries were included in the final analytical sample, excluding countries with missing data. HDI and urban population were found to be significantly associated with testing levels. Conclusions Results suggest that social conditions and government capacity remain consistently salient in the consideration of testing rates. International efforts to assist low-HDI countries are needed to support the global COVID-19 response.
机译:目标冠状病毒疾病(Covid-19)的跨国比较主要应用于死亡率分析。该分析的目标是通过跨国比较探索Covid-19测试的预测因素,以更好地通知国际卫生政策。方法测试和基于案例的数据来自我们的数据中的数据,有关预测者的信息来自世界银行。我们调查人类发展指数(HDI),保健支出,普遍健康覆盖率(UHC),城市人口,服务业工人(%)和空气污染作为预测因子。我们通过7月31,2020或最近可用的方法探讨了测试数据,或者最近可用,这些方法涉及将国家与第一个报告的Covid-19案例的日期相同,作为索引日期,并将累积测试标准化25天索引日期日期。三种多变量线性回归模型是以逐步的方式构建的,以探索Covid-19测试和HDI分数的索引数量之间的关联。结果总共86个国家纳入最终分析样本,不包括缺失数据的国家。发现HDI和城市人口与测试水平有关。结论结果表明,社会条件和政府能力在考虑检测率方面仍然持续存在。需要协助低HDI国家的国际努力支持全球Covid-19回应。

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