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Ecological Security Classification of Regionally Sustainable Utilization of Land Resources Based on SVM

机译:基于SVM的土地资源地区可持续利用生态安全分类

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Ecological security classification of land resources play an important role in sustainable utilization of land resources and improve benefit of healthy development of urbanization in China. According to the county level of ecological security classification of land resources data which is large scale and imbalance, this paper presented a support vector machine (SVM) model to classify the county level of ecological security of land resources. The method was compared with artificial neural network, decision tree, logistic regression, and naive Bayesian classifier regarding the county level of ecological security of land resources classification for Guanzhong urban agglomeration. It is found that the method has the best accuracy rate, hit rate, covering rate and lift coefficient, and provides an effective measurement for county level of ecological security of land resources classification and prediction.
机译:土地资源的生态安全分类在土地资源可持续利用中发挥着重要作用,提高了中国城市化健康发展的利益。据县级生态安全分类的土地资源数据量大规模和不平衡,本文介绍了一个支持向量机(SVM)模型,以分类县级土地资源的生态安全。将该方法与人工神经网络,决策树,逻辑回归和天真贝叶斯分类器进行比较,了解城区城市集聚土地资源分类的县级生态安全县级。结果发现该方法具有最佳的精度率,击中率,覆盖率和提升系数,并为土地资源分类和预测的县级生态安全性提供了有效的测量。

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