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Spatial interpolation of severely skewed data with several peak values by the approach integrating kriging and triangular irregular network interpolation

机译:结合克里格法和三角不规则网络插值的方法对具有几个峰值的严重偏斜数据进行空间插值

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摘要

It was not unusual in soil and environmental studies that the distribution of data is severely skewed with several high peak values, which causes the difficulty for Kriging with data transformation to make a satisfied prediction. This paper tested an approach that integrates kriging and triangular irregular network interpolation to make predictions. A data set consisting of total Copper (Cu) concentrations of 147 soil samples, with a skewness of 4.64 and several high peak values, from a copper smelting contaminated site in Zhejiang Province, China. The original data were partitioned into two parts. One represented the holistic spatial variability, followed by lognormal distribution, and then was interpolated by lognormal ordinary kriging. The other assumed to show the local variability of the area that near to high peak values, and triangular irregular network interpolation was applied. These two predictions were integrated into one map. This map was assessed by comparing with rank-order ordinary kriging and normal score ordinary kriging using another data set consisting of 54 soil samples of Cu in the same region. According to the mean error and root mean square error, the approach integrating lognormal ordinary kriging and triangular irregular network interpolation could make improved predictions over rank-order ordinary kriging and normal score ordinary kriging for the severely skewed data with several high peak values.
机译:在土壤和环境研究中,数据的分布严重偏斜并具有多个高峰值的情况并不少见,这导致进行数据转换的Kriging难以做出令人满意的预测。本文测试了一种将克里金法和三角不规则网络插值法相结合的方法来进行预测。来自中国浙江省一座铜冶炼污染场的147个土壤样品的总铜(Cu)浓度,偏度为4.64和几个高峰值组成的数据集。原始数据分为两部分。一个代表整体空间变异性,然后是对数正态分布,然后用对数正态普通克里金插值。另一个假设显示接近高峰值的区域的局部变化,并且应用了三角形不规则网络插值。这两个预测被整合到一张地图中。通过使用由同一地区的54个Cu土壤样品组成的另一个数据集,与等级排序的普通克里格法和普通得分的普通克里格法进行比较,评估了此地图。根据均值误差和均方根误差,对数正态普通克里格法和三角不规则网络插值相结合的方法可以对具有多个高峰值的严重偏斜数据进行秩序普通克里格法和普通分数普通克里格法的改进预测。

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  • 来源
    《Environmental Geology》 |2011年第5期|p.1093-1103|共11页
  • 作者单位

    Key Laboratory of Soil Environment and Pollution Remediation,Institute of Soil Science, Chinese Academy of Sciences,Nanjing 210008, China;

    College of Environmental and Resources Sciences,Zhejiang University, Hangzhou 310029, China;

    Key Laboratory of Soil Environment and Pollution Remediation,Institute of Soil Science, Chinese Academy of Sciences,Nanjing 210008, China;

    Key Laboratory of Soil Environment and Pollution Remediation,Institute of Soil Science, Chinese Academy of Sciences,Nanjing 210008, China;

    Key Laboratory of Soil Environment and Pollution Remediation,Institute of Soil Science, Chinese Academy of Sciences,Nanjing 210008, China;

    Department of Crop and Soil Sciences, Cornell University,Ithaca, NY 14853, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    skewed data; high peak value; data transformation; triangular irregular network; spatial distribution;

    机译:数据偏斜;峰值高;数据转换三角不规则网络空间分布;

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