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Designing an integrated urban growth prediction model: a scenario-based approach for preserving scenic landscapes

机译:设计综合城市增长预测模型:一种基于场景的保护景观景观

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摘要

This study demonstrates the integration of landscape aesthetic quality and probable urban growth patterns in urban landscape modelling. This was performed using SLEUTH as a scenario-based urban growth model in Gorgan City of Iran. Future urbanization was predicted under developing three different scenarios including historical, managed and aesthetically sound urban growth up to the year 2030. Multi-Layer Perceptron neural network model was conducted for mapping the aesthetic suitability of the study area. The aesthetic suitability layer was used in the third scenario of SLEUTH model as the excluded layer to protect the scenic patches in future. The results showed that by correct implementation of urban growth policies, 323 ha in the second scenario and 650 ha in the third scenario would be saved. This integrated model would help the planners for a better management of urban landscapes as a Spatial Decision Support System.
机译:本研究展示了城市景观建模中景观美学质量和可能城市成长模式的整合。 这是在伊朗·伊朗·伊朗·伊朗·伊朗的基于场景的城市增长模式进行。 在开发三种不同的场景下预测了未来的城市化,包括高达2030年的历史,管理和美学的城市增长。进行了多层的感知神经网络模型,用于绘制研究区域的审美适用性。 在作为排除的层的第三场景的第三场景中使用了审美适用性层,以防止将来保护景区曲线。 结果表明,通过正确实施城市增长政策,第三场比赛中的第二种情况和650公顷的323公顷将得到保存。 这一综合模式将有助于规划者更好地管理城市景观作为空间决策支持系统。

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