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Using GIS and spatial statistics to explore and model demand for emergency medical services in the city of Sudbury, Ontario.

机译:使用GIS和空间统计数据来探索和建模安大略省萨德伯里市对紧急医疗服务的需求。

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The purpose of this research is to examine the nature of the relationship between EMS ambulance call volume and demographic, socioeconomic and geographic (urban structural) forces in the City of Sudbury, a medium sized city of approximately 100,000 persons in Ontario, Canada. As in past research in the area of EMS demand, linear regression is used to model this relationship. However, unlike previous work, spatial autocorrelation inherent in real world data is addressed to mitigate violation of the assumption of independence required for classic regression.; Using a Geographical Information System (ArcView 3.2) EMS data are geolocated onto a spatial framework for which 1996 census data are available. A spatial analysis program (SpaceStat 1.90) is used to operationalize a spatial model, and perform a battery of spatial diagnostics.; After exploring the data with an aspatial stepwise regression model and identifying spatial autocorrelation in the explanatory variables, a mixed aspatial/spatial stepwise regression model is used. The variables "Percent People Living Alone" and its spatially lagged version, a lagged version of "Percent of Apartment Dwellings" and lagged "Percent of People Aged 20 to 64" account for 52% of the variation in EMS calls per 1,000 persons.; Clearly, demand for Emergency Medical Services varies greatly from place to place within a community. And this variety is, in part at least, related to underlying demographic and socioeconomic realities. Strategic deployment of resources based on these realities could assure provision of more effective and efficient Emergency Medical Services. Also, injury prevention and health promotion programs could be targeted more precisely to groups and areas in need through the help of EMS demand analysis.
机译:这项研究的目的是研究萨德伯里市EMS救护车呼叫量与人口,社会经济和地理(城市结构)力量之间关系的性质。萨德伯里市是加拿大安大略省一个约有100,000人的中型城市。与以往在EMS需求方面的研究一样,线性回归被用于建立这种关系的模型。但是,与以前的工作不同,解决了现实世界数据中固有的空间自相关问题,以减轻对经典回归所需的独立性假设的违反。使用地理信息系统(ArcView 3.2),将EMS数据地理定位到可获取1996年人口普查数据的空间框架上。空间分析程序(SpaceStat 1.90)用于操作空间模型,并执行一系列的空间诊断。在使用空间逐步回归模型探索数据并确定解释变量中的空间自相关之后,使用空间空间逐步混合回归模型。变量“独居人口百分比”及其空间滞后版本,“公寓住宅百分比”的滞后版本和“ 20岁至64岁的人口百分比”的滞后变量占每1000人EMS呼叫变化的52%。显然,社区中各地对紧急医疗服务的需求差异很大。而且这种多样性至少部分与潜在的人口和社会经济现实有关。根据这些现实情况对资源进行战略性部署可以确保提供更加有效和高效的紧急医疗服务。此外,通过EMS需求分析,可以将伤害预防和健康促进计划更精确地定位到需要的人群和地区。

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