Neuwirth C, Peck A, Simonović S P
Doctoral College GIScience, University of Salzburg, Salzburg, Austria ; Department of Geography, University of Munich (LMU), Munich, Germany.
Department of Civil and Environmental Engineering, University of Western Ontario, London, Canada.
Environ Model Softw. 2015 Mar;65:30-40. doi: 10.1016/j.envsoft.2014.11.026.
System dynamics (SD) is an effective approach for helping reveal the temporal behavior of complex systems. Although there have been recent developments in expanding SD to include systems' spatial dependencies, most applications have been restricted to the simulation of diffusion processes; this is especially true for models on structural change (e.g. LULC modeling). To address this shortcoming, a Python program is proposed to tightly couple SD software to a Geographic Information System (GIS). The approach provides the required capacities for handling bidirectional and synchronized interactions of operations between SD and GIS. In order to illustrate the concept and the techniques proposed for simulating structural changes, a fictitious environment called Daisyworld has been recreated in a spatial system dynamics (SSD) environment. The comparison of spatial and non-spatial simulations emphasizes the importance of considering spatio-temporal feedbacks. Finally, practical applications of structural change models in agriculture and disaster management are proposed.
系统动力学(SD)是一种有助于揭示复杂系统时间行为的有效方法。尽管最近在将系统动力学扩展到包括系统的空间依赖性方面有了进展,但大多数应用都局限于扩散过程的模拟;对于结构变化模型(如土地利用/土地覆盖变化建模)来说尤其如此。为了解决这一缺点,提出了一个Python程序,将系统动力学软件与地理信息系统(GIS)紧密耦合。该方法提供了处理系统动力学和地理信息系统之间操作的双向和同步交互所需的能力。为了说明模拟结构变化所提出的概念和技术,在空间系统动力学(SSD)环境中重新创建了一个名为雏菊世界的虚拟环境。空间模拟和非空间模拟的比较强调了考虑时空反馈的重要性。最后,提出了结构变化模型在农业和灾害管理中的实际应用。