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Adaptive geostatistical sampling enables efficient identification of malaria hotspots in repeated cross-sectional surveys in rural Malawi

机译:自适应地统计抽样能够在马拉维农村地区的反复横断面调查中有效识别疟疾热点

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摘要

IntroductionIn the context of malaria elimination, interventions will need to target high burden areas to further reduce transmission. Current tools to monitor and report disease burden lack the capacity to continuously detect fine-scale spatial and temporal variations of disease distribution exhibited by malaria. These tools use random sampling techniques that are inefficient for capturing underlying heterogeneity while health facility data in resource-limited settings are inaccurate. Continuous community surveys of malaria burden provide real-time results of local spatio-temporal variation. Adaptive geostatistical design (AGD) improves prediction of outcome of interest compared to current random sampling techniques. We present findings of continuous malaria prevalence surveys using an adaptive sampling design.
机译:简介在消除疟疾的背景下,干预措施需要针对高负担地区,以进一步减少传播。当前用于监测和报告疾病负担的工具缺乏连续检测疟疾所表现出的疾病分布的细微时空变化的能力。这些工具使用随机采样技术,这些技术在捕获资源受限设置中的医疗机构数据不准确时,无法有效捕获潜在的异质性。社区对疟疾负担的连续调查提供了当地时空变化的实时结果。与当前的随机抽样技术相比,自适应地统计设计(AGD)改进了对目标结果的预测。我们介绍了使用自适应采样设计进行的持续疟疾流行调查的结果。

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