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Measuring the quality of life in city of Indianapolis by integration of remote sensing and census data

机译:通过集成遥感和人口普查数据来测量印第安纳波利斯市的生活质量

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This paper develops a methodology for integration of remote sensing and census data within a GIS framework to assess the quality of life in Indianapolis, Indiana, United States. Environmental variables, i.e. greenness, impervious surface and temperature, were derived from a Landsat ETM+ image. Socio-economic variables, including population density, income, poverty, employment rate, education level and house characteristics from US census 2000, were integrated with the environmental variables at the block group level to derive indicators of quality of life. Pearson's correlation was computed to analyse the relationships among the variables. Further, factor analysis was conducted to extract unique information from the combined dataset. Three factors were identified and interpreted as material welfare, environmental conditions and crowdedness respectively. Each factor was viewed as a unique aspect of the quality of life. A synthetic index of the urban quality of life was created and mapped based on weighted factor scores of the three factors. Finally, regression models were built to estimate the quality of life in the city of Indianapolis based on selected environmental and socioeconomic variables.
机译:本文开发了一种在GIS框架内集成遥感和人口普查数据的方法,以评估美国印第安纳州印第安纳波利斯的生活质量。环境变量,即绿色,不透水的表面和温度,是根据Landsat ETM +图像得出的。将社会经济变量(包括美国2000年人口普查中的人口密度,收入,贫困,就业率,教育水平和房屋特征)与街区组水平的环境变量相结合,以得出生活质量指标。计算皮尔逊相关性以分析变量之间的关系。此外,进行了因子分析以从组合数据集中提取唯一信息。确定并解释了三个因素:物质福利,环境条件和人群拥挤。每个因素都被视为生活质量的独特方面。根据三个因素的加权因素得分,创建并绘制了城市生活质量的综合指数。最后,基于选定的环境和社会经济变量,建立了回归模型来估计印第安纳波利斯市的生活质量。

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