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An agent-based model for optimal land allocation (AgentLA) with a contiguity constraint

机译:具有连续性约束的基于代理的最优土地分配模型(AgentLA)

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摘要

Spatial optimization is complex because it usually involves numerous spatial factors and constraints. The optimization becomes more challenging if a large set of spatial data with fine resolutions are used. This article presents an agent-based model for optimal land allocation (AgentLA) by maximizing the total amount of land-use suitability and the compactness of patterns. The essence of the optimization is based on the collective efforts of agents for formulating the optimal patterns. A local and global search strategy is proposed to inform the agents to select the sites properly. Three sets of hypothetical data were first used to verify the optimization effects. AgentLA was then applied to the solution of the actual land allocation optimization problems in Panyu city in the Pearl River Delta. The study has demonstrated that the proposed method has better performance than the simulated annealing method for solving complex spatial optimization problems. Experiments also indicate that the proposed model can produce patterns that are very close to the global optimums.
机译:空间优化很复杂,因为它通常涉及许多空间因素和约束。如果使用大量具有高分辨率的空间数据,优化将变得更具挑战性。本文通过最大化土地使用适宜性的总量和模式的紧凑性,提出了一种基于代理的最优土地分配模型(AgentLA)。优化的实质是基于代理的共同努力来制定最佳模式。建议使用本地和全局搜索策略来通知代理正确选择站点。首先使用三组假设数据来验证优化效果。然后将AgentLA应用于解决珠三角番Pan市实际土地分配优化问题。研究表明,所提出的方法在解决复杂的空间优化问题上比模拟退火方法具有更好的性能。实验还表明,提出的模型可以产生非常接近全局最优值的模式。

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