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Modelling dasometric attributes of mixed and uneven-aged forests using Landsat-8 OLI spectral data in the Sierra Madre Occidental, Mexico

机译:使用墨西哥西马德雷山脉的Landsat-8 OLI光谱数据对混合和不均年龄森林的dasmetric属性进行建模

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Abstract: Remote sensors can be used as a robust and effective means of monitoring isolated or inaccessible forest sites. In the present study, the multivariate adaptive regression splines (MARS) technique was successfully applied to remotely sensed data collected by the Landsat-8 satellite to estimate mean diameter at breast height (R2 = 0.73), mean crown cover (R2 = 0.55), mean volume (R2 = 0.57) and total volume per plot (R2 = 0.41) in the forest monitoring sites. However, the spectral data yielded poor estimates of tree number per plot (R2 = 0.22), the mean height (R2 = 0.25) and the mean diameter at base (R2 = 0.38). Seven spectral bands (band 1 to band 7), six vegetation indexes and other derived parameters (NDVI, SAVI, LAI, FPAR. ALB and ASR) and eight terrain variables derived from the digital elevation model (elevation, slope, aspect, plan curvature, profile curvature, transformed aspect, terrain shape index and wetness index) were used as predictors in the fitted models. To prevent over-parameterization only some of the predictor variables considered were included in each model. The results indicate the MARS technique is potentially suitable for estimating dasometric variables from using spectral data obtained by the Landsat-8 OLI sensor.
机译:摘要:远程传感器可以用作监视孤立或无法访问的森林站点的强大而有效的手段。在本研究中,将多元自适应回归样条(MARS)技术成功应用于Landsat-8卫星收集的遥感数据,以估算乳房高度的平均直径(R2 = 0.73),平均冠冠覆盖度(R2 = 0.55),森林监测点的平均容积(R2 = 0.57)和每块地的总容积(R2 = 0.41)。但是,光谱数据对每块图的树数(R2 = 0.22),平均高度(R2 = 0.25)和基部平均直径(R2 = 0.38)的估计很差。七个光谱波段(波段1到波段7),六个植被指数和其他派生参数(NDVI,SAVI,LAI,FPAR,ALB和ASR)和八个地形变量,这些变量来自数字高程模型(高程,坡度,纵横比,平面曲率) ,轮廓曲率,变换的纵横比,地形形状指数和湿度指数)用作拟合模型中的预测变量。为了防止过度参数化,每个模型中只考虑了一些预测变量。结果表明,MARS技术潜在地适合于使用Landsat-8 OLI传感器获得的光谱数据来估算流量变量。

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