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首页> 外文期刊>Earth Surface Processes and Landforms: The journal of the British Geomorphological Research Group >Ecogeomorphic state variables and phase-space construction for quantifying the evolution of vegetated aeolian landscapes
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Ecogeomorphic state variables and phase-space construction for quantifying the evolution of vegetated aeolian landscapes

机译:生态地貌状态变量和相空间构造用于量化植被风化景观的演变

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Cellular automaton modelling for the simulation of dune field formation and evolution has developed progressively in aeolian geomorphology in the last decade or so. A model that incorporates the effects of vegetation and its interactions with geomorphic landscape development - the Discrete Ecogeomorphic Aeolian Landscapes (DECAL) model - can replicate a number of important visual and qualitative aspects of the complex evolution of aeolian dune landscapes under the influence of vegetation dynamics in coastal environments. A key challenge in this research area is the analysis and comparison of both simulated and real-world vegetated dune landscapes using objective and quantifiable principles. This study presents a methodological framework or protocol for numerically quantifying various ecogeomorphic attributes, using a suite of mathematically defined landscape metrics, to provide a rigorous and statistical evaluation of vegetated dune field evolution. Within this framework the model parameter space can be systematically explored and simulation outcomes can be methodically compared against real-world landscapes. Based on a simplified scenario of parabolic dunes developing out of blow-outs the resulting dune field realizations are investigated as a function of variable growth vigour of two simulated vegetation types (pioneer grass and successional woody shrub) by establishing a typological phase-diagram of different landscape classes. The set of simulation outcomes furthermore defines a higher-dimensional phase-space, whose axes or dimensions can be interpreted by analysing how individual ecogeomorphic landscape metrics, or state variables, contribute to the data distribution. Principal component analysis can reduce this to a visual three-dimensional (3D) phase-space where landscape evolution can be plotted as time-trajectories and where we can investigate the effects of changing environmental conditions partway through a simulation scenario. The use of landscape state variables and the construction of a 3D phase-space presented here may provide a general template for quantifying many other eco-geomorphic systems on the Earth's surface. Copyright (C) 2010 John Wiley & Sons, Ltd.
机译:在过去十年左右的时间里,用于模拟沙丘场形成和演化的元胞自动机建模在风沙地貌学中得到了逐步发展。包含植被及其与地貌景观发展的相互作用的模型-离散生态地貌风神景观(DECAL)模型-可以在植被动力学的影响下复制风沙丘景观复杂演化的许多重要的视觉和质量方面在沿海环境中。该研究领域的主要挑战是使用客观和可量化的原理对模拟和现实的植被沙丘景观进行分析和比较。这项研究提出了一套使用数学定义的景观指标对各种生态地貌属性进行数值量化的方法框架或协议,以对植被沙丘场的演变进行严格的统计评估。在此框架内,可以系统地探索模型参数空间,并且可以有条不紊地将仿真结果与实际环境进行比较。基于抛物线状沙丘从井喷发展的简化情况,通过建立不同类型的相图,研究了沙丘场实现与两种模拟植被类型(先锋草和演替木本灌木丛)的可变生长势的函数关系。景观类。模拟结果集还定义了一个更高维的相空间,该相空间的轴或维可以通过分析各个生态地貌景观度量或状态变量对数据分布的贡献来解释。主成分分析可以将其简化为视觉三维(3D)相空间,在该相空间中,景观演化可以绘制为时间轨迹,并且在仿真场景中我们可以部分研究环境条件变化的影响。这里介绍的景观状态变量的使用和3D相空间的构造可能会提供一个通用模板,用于量化地球表面上的许多其他生态地貌系统。版权所有(C)2010 John Wiley&Sons,Ltd.

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