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Mapping Forest Health Using Spectral and Textural Information Extracted from SPOT-5 Satellite Images

机译:使用从SPOT-5卫星图像中提取的光谱和纹理信息绘制森林健康图

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Forest health is an important variable that we need to monitor for forest management decision making. However, forest health is difficult to assess and monitor based merely on forest field surveys. In the present study, we first derived a comprehensive forest health indicator using 15 forest stand attributes extracted from forest inventory plots. Second, Pearson’s correlation analysis was performed to investigate the relationship between the forest health indicator and the spectral and textural measures extracted from SPOT-5 images. Third, all-subsets regression was performed to build the predictive model by including the statistically significant image-derived measures as independent variables. Finally, the developed model was evaluated using the coefficient of determination (R 2 ) and the root mean square error (RMSE). Additionally, the produced model was further validated for its performance using the leave-one-out cross-validation approach. The results indicated that our produced model could provide reliable, fast and economic means to assess and monitor forest health. A thematic map of forest health was finally produced to support forest health management.
机译:森林健康是我们需要监测的森林管理决策的重要变量。但是,仅凭森林实地调查很难评估和监测森林健康。在本研究中,我们首先使用从森林资源清单中提取的15种林分属性得出了一个综合的森林健康指标。其次,进行了Pearson的相关性分析,以调查森林健康指标与从SPOT-5图像中提取的光谱和纹理度量之间的关系。第三,通过将统计上显着的图像衍生度量包括为自变量,进行了所有子集回归以建立预测模型。最后,使用确定系数(R 2)和均方根误差(RMSE)对开发的模型进行评估。此外,使用留一法交叉验证方法进一步验证了产生的模型的性能。结果表明,我们生产的模型可以提供可靠,快速和经济的方法来评估和监测森林健康。最终制作了森林健康专题图以支持森林健康管理。

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