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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Markov point processes for modeling of spatial forest patterns in Amazonia derived from interferometric height
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Markov point processes for modeling of spatial forest patterns in Amazonia derived from interferometric height

机译:基于干涉高度的马氏点空间模型的马氏点过程

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The spatial distribution of very large trees in primary Amazon forest is studied with an indicative data set. Very large trees with height larger than 30 in are shown to be highly influential on forest structure, ecology and biomass regime. In particular, they account for a large portion of total above-ground biomass. Their spatial patterns are extracted from airborne SAR data, namely from a digital model- of interferometric forest height, by an approach of local maximum filtering. The spatial point patterns describing the distribution of very large trees in the forest within three sample blocks of 100 ha each are modeled by a series of Markov point process models. These models are fitted and assessed by standard spatial statistical methodology. Spatial distribution is regular, and interaction decreases with distance; very large trees are shown to exert repulsive interaction with their neighboring very large trees. The significance of these results for approaches of quantitative forest assessment in primary forests in the Brazilian Amazon is discussed. (C) 2005 Elsevier Inc. All rights reserved.
机译:使用指示性数据集研究了亚马逊原始森林中非常大的树木的空间分布。高度大于30 in的非常大的树木对森林结构,生态学和生物量状况有很大影响。特别是,它们占地面上总生物量的很大一部分。通过局部最大滤波,从机载SAR数据(即干涉林高度的数字模型)中提取了它们的空间模式。用一系列马尔可夫点过程模型对描述森林中非常大的树木在每个100公顷的三个样本块中的分布的空间点模式进行建模。这些模型通过标准空间统计方法进行拟合和评估。空间分布是规则的,并且相互作用随着距离而减少;大型树木显示出与其相邻的大型树木产生排斥相互作用。讨论了这些结果对巴西亚马逊原始森林中定量森林评估方法的重要性。 (C)2005 Elsevier Inc.保留所有权利。

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