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Understanding Weather and Hospital Admissions Patterns to Inform Climate Change Adaptation Strategies in the Healthcare Sector in Uganda

机译:了解天气和医院的入院模式为乌干达的医疗保健行业提供信息以适应气候变化的适应策略

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摘要

Background: Season and weather are associated with many health outcomes, which can influence hospital admission rates. We examined associations between hospital admissions (all diagnoses) and local meteorological parameters in Southwestern Uganda, with the aim of supporting hospital planning and preparedness in the context of climate change. Methods: Hospital admissions data and meteorological data were collected from Bwindi Community Hospital and a satellite database of weather conditions, respectively (2011 to 2014). Descriptive statistics were used to describe admission patterns. A mixed-effects Poisson regression model was fitted to investigate associations between hospital admissions and season, precipitation, and temperature. Results: Admission counts were highest for acute respiratory infections, malaria, and acute gastrointestinal illness, which are climate-sensitive diseases. Hospital admissions were 1.16 (95% CI: 1.04, 1.31; p = 0.008) times higher during extreme high temperatures (i.e., >95th percentile) on the day of admission. Hospital admissions association with season depended on year; admissions were higher in the dry season than the rainy season every year, except for 2014. Discussion: Effective adaptation strategy characteristics include being low-cost and quick and practical to implement at local scales. Herein, we illustrate how analyzing hospital data alongside meteorological parameters may inform climate-health planning in low-resource contexts.
机译:背景:季节和天气与许多健康状况相关,这可能会影响住院率。我们研究了乌干达西南部医院入院(所有诊断)与当地气象参数之间的关联,目的是在气候变化的背景下支持医院的规划和准备工作。方法:分别从布恩迪社区医院和天气状况卫星数据库(2011年至2014年)收集医院入院数据和气象数据。描述性统计数据用于描述入学模式。拟合了混合效应Poisson回归模型,以研究住院人数与季节,降水和温度之间的关联。结果:急性呼吸道感染,疟疾和急性胃肠道疾病(对气候敏感的疾病)的入院计数最高。入院当天的极端高温(即> 95%)的住院人数是高出的1.16倍(95%CI:1.04,1.31; p = 0.008)。取决于季节的医院入院协会取决于年份;除2014年外,每年旱季的入场率均高于雨季。讨论:有效的适应策略特征包括低成本,快速和实用的本地规模实施。本文中,我们说明了如何分析医院数据以及气象参数如何在资源匮乏的情况下为气候卫生计划提供依据。

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