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Landscape metric performance in analyzing two decades of deforestation in the Amazon Basin of Rondonia, Brazil

机译:景观度量标准在分析巴西朗多尼亚亚马逊流域的二十年森林砍伐中的表现

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Sixteen landscape metrics were evaluated with respect to the effects of spatial aggregation oil six different years of Landsat data for a deforested area in Rondonia, Brazil. Spatial aggregation was performed by two methods. The first method involved varying the window size in texture mean co-occurrence filtering prior to classification. The second method involved aggregating the data post-classification by resampling with a majority filter. The Landscape Shape Index (LSI) and Square Pixel (SqP) metric showed the most predictable behavior of the shape complexity metrics having strong decreases with each increase in aggregation. The Edge Density (ED) and Patch Densh, (PD) metrics showed the most predictable behavior among the edge and patch metrics, decreasing with increasing aggregation. The Mean Nearest Neighbor (MNN) metric also behaved as expected but its results were less consistent than those of ED and PD. Many of the remaining metrics gave inconsistent and unpredictable results with respect to spatial aggregation. (c) 2005 Published by Elsevier Inc.
机译:针对巴西Rondonia的一片森林砍伐地区的六个不同年份的Landsat数据,针对空间聚集油的影响评估了16个景观指标。空间聚集通过两种方法进行。第一种方法涉及在分类之前在纹理均值共现滤波中更改窗口大小。第二种方法涉及通过使用多数过滤器进行重采样来聚合数据后分类。横向形状指数(LSI)和正方形像素(SqP)度量标准显示了形状复杂性度量标准的最可预测行为,随着聚合度的每次增加,其形状都有明显的降低。边缘密度(ED)和补丁修补程序(PD)度量标准在边缘和补丁度量标准中显示出最可预测的行为,并且随着聚合的增加而降低。平均最近邻(MNN)度量标准也表现出预期,但其结果不如ED和PD一致。关于空间聚合,许多剩余的度量给出了不一致且不可预测的结果。 (c)2005年由Elsevier Inc.发布。

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