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MODIS VCF should not be used to detect discontinuities in tree cover due to binning bias. A comment on Hanan et al. (2014) and Staver and Hansen (2015)

机译:mODIs VCF不应用于检测由于分档偏差引起的树木覆盖的不连续性。对Hanan等人的评论。 (2014年)和staver和Hansen(2015年)

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摘要

In their recent paper, Staver and Hansen (Global Ecology and Biogeography, 2015, 24, 985-987) refute the case made by Hanan et al. (Global Ecology and Biogeography, 2014, 23, 259–263) that the use of classification and regression trees (CARTs) to predict tree cover from remotely sensed imagery (MODIS VCF) inherently introduces biases, thus making the resulting tree cover unsuitable for showing alternative stable states through tree cover frequency distribution analyses. We here provide a new and equally fundamental argument why the published frequency distributions should not be used for such purposes. We show that the practice of pre-average binning of tree cover values used to derive cover values to train the CART model will also introduce errors in the frequency distributions of the final product. We demonstrate that the frequency minima found at tree covers 8 % to 18 %; 33 % to 45 %; and 55 % to 75 % can be attributed to numerical biases introduced when training samples are derived from landscapes containing asymmetric tree cover distributions and/or a tree cover gradient. So it is highly likely that the CART, used to produce MODIS VCF, delivers tree cover frequency distributions that do not reflect the real world situation.
机译:Staver和Hansen(全球生态与生物地理,2015,24,985-987)在他们最近的论文中驳斥了Hanan等人的案例。 (Global Ecology and Biogeography,2014,23,259–263),使用分类和回归树(CART)从遥感影像(MODIS VCF)预测树的覆盖范围会固有地引入偏差,从而使生成的树的覆盖层不适合显示通过树覆盖频率分布分析获得其他稳定状态。我们在这里提供了一个新的且同样基本的论点,为什么不应该将已发布的频率分布用于此类目的。我们表明,用于推导CART模型的覆盖值的树覆盖值的预先平均装箱的做法也会在最终产品的频率分布中引入误差。我们证明了在树上发现的最小频率占8%到18%; 33%至45%;当训练样本来自包含非对称树覆盖分布和/或树覆盖梯度的景观时,引入的数字偏差可归因于55%到75%。因此,用于生成MODIS VCF的CART非常有可能提供无法反映实际情况的树覆盖频率分布。

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