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Forecasting Urban Vacancy Dynamics in a Shrinking City: A Land Transformation Model

机译:收缩城市中的城市空置动态预测:土地转化模型

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In the past two centuries, many American urban areas have experienced significant expansion in both populating and depopulating cities. The pursuit of bigger, faster, and more growth-oriented planning parallels a situation where municipal decline has also been recognized as a global epidemic. In recent decades many older industrial cities have experienced significant depopulation, job loss, economic decline, and massive increases in vacant and abandoned properties due primarily to losses in industry and relocating populations. Despite continuous economic decline and depopulation, many of these so-called ‘shrinking cities’ still chase growth-oriented planning policies, due partially to inabilities to accurately predict future urban growth/decline patterns. This capability is critical to understanding land use alternation patterns and predicting future possible scenarios for the development of more proactive land use policies dealing with urban decline and regeneration. In this research, the city of Chicago, Illinois, USA is used as a case site to test an urban land use change model that predicts urban decline in a shrinking city, using vacant land as a proxy. Our approach employs the Land Transformation Model (LTM), which combines Geographic Information Systems and artificial neural networks to forecast land use change. Results indicate that the LTM is a good resource to simulate urban vacant land changes. Mobility and housing market conditions seem to be the primary variables contributing to decline.
机译:在过去的两个世纪中,许多美国城市地区的人口稠密和人口稠密的城市都经历了显着的扩张。追求更大,更快,更注重增长的计划与城市衰落也被认为是全球流行病的情况平行。在最近的几十年中,许多较老的工业城市经历了严重的人口减少,工作流失,经济下滑以及空置和废弃财产的大量增加,这主要是由于工业损失和搬迁人口​​造成的。尽管经济持续下滑和人口减少,但由于无法准确预测未来的城市增长/下降模式,许多所谓的“城市缩水”仍然遵循着以增长为导向的规划政策。此功能对于理解土地用途的交替模式和预测未来可能的情况至关重要,以便制定更积极的土地使用政策以应对城市衰退和更新。在这项研究中,以美国伊利诺伊州芝加哥市为例,测试了一个城市土地利用变化模型,该模型以空置土地为代表,预测了一个萎缩城市的城市衰退。我们的方法采用土地转化模型(LTM),该模型结合了地理信息系统和人工神经网络来预测土地利用变化。结果表明,LTM是模拟城市空置土地变化的良好资源。流动性和住房市场状况似乎是造成下降的主要因素。

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