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Gentrification Prediction Using Machine Learning

机译:采用机器学习的绅化预测

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Gentrification is a problem in big cities that confounds economic, political and population factors. Whenever it happens, people in the higher brackets of income replace people of low income. This replacement generates population displacement, which force people to change their lives radically. In this work, we use Classification Trees to generate an index, which will indicate the likelihood for a neighborhood to gentrify. This index uses many population variables that include things like age, education and transportation. This system can be used later to inform decisions regarding urban housing and transportation. We can prevent areas of the city of overflowing with private investment in lieu of public housing policy that allows people to stay in their places of living. We expect this work to be a stepping zone on working towards a generalization of gentrification effects in different cities in the world.
机译:Gentrification是大城市的一个问题,这些问题困扰着经济,政治和人口因素。每当它发生的情况下,人们在更高的收入括号中取代了低收入的人。这种替代品产生人口流离失所,强迫人们从根本上改变他们的生活。在这项工作中,我们使用分类树来生成索引,这将表明邻居更加绅士的可能性。该指数使用许多包括年龄,教育和运输等物种的人口变量。此系统以后可以用来为城市住房和交通的决策。我们可以防止私人投资充满私人投资的城市,以代替公共住房政策,使人们能够留在他们的生活地。我们预计这项工作是一项关于努力实现世界不同城市更加绅士效应的普遍之化的地带。

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