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Identifying the determinant habitat characteristics influencing the spatial distribution of Ferula ovina (Boiss.) in semiarid rangelands of Iran using machine learning methods

机译:用机器学习方法确定影响Ferula Ovina(Boiss。)在伊朗的半干旱牧场空间分布的决定因素栖息地特征

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Ferula ovina (Boiss.) is a valuable but vulnerable monocarpic perennial forb species from Apiaceae plant family whose habitat has been degraded over the years; hence identifying the factors controlling its distribution is important to assist range managers for the reclamation activities. The specific objective of this study was to investigate the quantitative relationships between soil properties, topographical features, climate factors and F. ovina distribution in a semiarid part of central Iran and to assess the relative importance of these factors in controlling its spatial variability. To discern these complex relationships, artificial neural networks (ANNs), support vector machines (SVMs), and decision tree CHAID algorithm were employed. Results from the ANN, SVM, and CHAID models indicated that the climate and topographic conditions should be considered more in explaining the variability in F. ovina occurrence and distribution. Factors such as slope, precipitation of warmest month, and minimum temperature of coldest month were identified by the ANN, SVM, and CHAID models as the determinant factors influencing the spatial distribution of F. ovina in central Iran, respectively. Furthermore, CHAID approach showed greater potential in predicting the F. ovina occurrence in the study area. This study provides a strong basis for identifying the most determinant habitat characteristics of F. ovina and other vulnerable or endangered plant species in semiarid rangelands of Iran; however, its general analytical framework could be applied to other parts of the world with similar challenges.
机译:Ferula ovina(Boiss。)是来自亚申亚植物植物家庭的植物植物家族的有价值但脆弱的单仁细胞,其栖息地在多年来已经退化;因此,识别控制其分配的因素对于协助Ranglamation Managers进行填海活动非常重要。本研究的具体目的是探讨伊朗中部半干旱部分土壤性质,地形特征,气候因素和F. ovina分布的定量关系,并评估这些因素在控制其空间变异方面的相对重要性。为了辨别这些复杂的关系,采用了人工神经网络(ANN),支持向量机(SVM)和决策树CHAID算法。 ANN,SVM和CHAID模型的结果表明,在解释F. ovina发生和分布的可变性方面,应更进一步的气候和地形条件。 ANN,SVM和CHAID模型作为影响伊朗中部卵巢空间分布的决定因素,如斜坡,最温暖月份和最冷的月份最低温度的因素及最低月份的最低温度。此外,CHAID方法表明预测研究区域的F. ovina发生的潜力更大。本研究为鉴定伊朗半干旱牧场的F. ovina和其他脆弱或濒危植物种类的最大程度的栖息地特征提供了强有力的基础;然而,其一般分析框架可以应用于世界其他地区,具有类似的挑战。

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