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首页> 外文期刊>ISPRS International Journal of Geo-Information >Evaluation of Deterministic and Complex Analytical Hierarchy Process Methods for Agricultural Land Suitability Analysis in a Changing Climate
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Evaluation of Deterministic and Complex Analytical Hierarchy Process Methods for Agricultural Land Suitability Analysis in a Changing Climate

机译:气候变化中农业土地适宜性分析的确定性和复杂层次分析方法的评价

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Land suitability analysis is employed to evaluate the appropriateness of land for a particular purpose whilst integrating both qualitative and quantitative inputs, which can be continuous in nature. However, in agricultural modelling there is often a disregard of this contiguous aspect. Therefore, some parametric procedures for suitability analysis compartmentalise units into defined membership classes. This imposition of crisp boundaries neglects the continuous formations found throughout nature and overlooks differences and inherent uncertainties found in the modelling. This research will compare two approaches to suitability analysis over three differing methods. The primary approach will use an Analytical Hierarchy Process (AHP), while the other approach will use a Fuzzy AHP over two methods; Fitted Fuzzy AHP and Nested Fuzzy AHP. Secondary to this, each method will be assessed into how it behaves in a climate change scenario to understand and highlight the role of uncertainties in model conceptualisation and structure. Outputs and comparisons between each method, in relation to area, proportion of membership classes and spatial representation, showed that fuzzy modelling techniques detailed a more robust and continuous output. In particular the Nested Fuzzy AHP was concluded to be more pertinent, as it incorporated complex modelling techniques, as well as the initial AHP framework. Through this comparison and assessment of model behaviour, an evaluation of each methods predictive capacity and relevance for decision-making purposes in agricultural applications is gained.
机译:土地适宜性分析用于评估土地用于特定目的的适宜性,同时整合定性和定量输入,这在本质上可以是连续的。但是,在农业建模中,经常会忽略此连续方面。因此,适用性分析的一些参数化程序将单位划分为定义的成员资格类别。清晰边界的这种施加方式忽略了整个自然界中发现的连续构造,而忽略了建模中发现的差异和内在的不确定性。这项研究将比较两种方法在三种不同方法上的适用性分析。主要方法将使用分析层次过程(AHP),而另一种方法将对两种方法使用模糊AHP。拟合模糊层次分析法和嵌套模糊层次分析法。在此之后,将对每种方法进行评估,以评估其在气候变化情景中的行为方式,以了解和突出不确定性在模型概念化和结构中的作用。每种方法的输出和比较(相对于面积,隶属关系类别的比例和空间表示形式)表明,模糊建模技术详细描述了更健壮和连续的输出。尤其是嵌套模糊AHP得出的结论更为恰当,因为它结合了复杂的建模技术以及初始的AHP框架。通过对模型行为的比较和评估,获得了对每种方法的预测能力及其在农业应用中决策目的的相关性的评估。

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