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Fusion of multispectral and LIDAR remote sensing data for the estimation of forest attributes in an Alpine region

机译:多光谱和LIDAR遥感数据的融合,以估算高山地区森林属性

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This paper presents an analysis on the integration of airborne LIDAR and satellite multispectral data (IRS 1C LISS) for the prediction of forest stem volume at plot level. A set of variables has been extracted from both LIDAR and multispectral data and some models have been defined considering data source (LIDAR, multispectral and a combination of both) and the species composition of the plot areas. The analyzed data set comprises 799 ground-truth plots within the forested areas of the Trento Province, Italy (about 3 000 km~2), in the Italian Alps. This area is characterized by a large heterogeneity in terms of ecological environments, species composition, morphology, and altitude. Experimental results show that the combination of LIDAR and IRS 1C LISS data for the estimation of forest attributes is effective. The best model developed comprises variables extracted from both these dataset, even if variables derived from LIDAR data provide the most important contribution.
机译:本文介绍了空中激光雷达和卫星多光谱数据(IRS 1C Liss)的集成分析,以便在绘图水平上预测森林茎体积。已经从LIDAR和多光谱数据中提取了一组变量,并且考虑了一些模型考虑了数据源(LIDAR,多光谱和两者的组合)和地区的物种组成。分析的数据集在意大利阿尔卑斯山区的特伦托省的森林地区内的799个地面图,意大利(约3 000公里〜2)。该地区的特征在于生态环境,物种组成,形态和高度方面具有大的异质性。实验结果表明,LIDAR和IRS 1C Liss数据的组合估计森林属性是有效的。开发的最佳模型包括从这两个数据集中提取的变量,即使从LIDAR数据导出的变量提供最重要的贡献。

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