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Empirically derived method and software for semi-automatic calibration of Cellular Automata land-use models

机译:基于经验的细胞自动机土地利用模型半自动校准方法和软件

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Land-use change models generally include neighbourhood rules to capture the spatial dynamics between different land-uses that drive land-use changes, introducing many parameters that require calibration. We present a process-specific semi-automatic method for calibrating neighbourhood rules that utilises discursive knowledge and empirical analysis to reduce the complexity of the calibration problem, and efficiently calibrates the remaining interactions with consideration of locational agreement and landscape pattern structure objectives. The approach and software for implementing it are tested on four case studies of major European cities with different physical characteristics and rates of urban growth, exploring preferences for different objectives. The approach outperformed benchmark models for both calibration and validation when a balanced objective preference was used. This research demonstrates the utility of process-specific calibration methods, and highlights how process knowledge can be integrated with automatic calibration to make it more efficient.
机译:土地利用变化模型通常包括邻域规则,以捕获驱动土地利用变化的不同土地利用之间的空间动态,引入许多需要校准的参数。我们提出了一种用于校准邻域规则的特定于过程的半自动方法,该方法利用了推论知识和经验分析来减少校准问题的复杂性,并在考虑位置一致性和景观格局结构目标的情况下有效地校准了其余的相互作用。在具有不同自然特征和城市增长率的欧洲主要城市的四个案例研究中测试了实现该方法的方法和软件,并探索了针对不同目标的偏好。当使用平衡的客观偏好时,该方法在校准和验证方面都优于基准模型。这项研究演示了特定于过程的校准方法的实用性,并强调了如何将过程知识与自动校准集成在一起以使其更加高效。

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