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GEOSTATISTICAL METHODS FOR ESTIMATING SOIL PROPERTIES (KRIGING, COKRIGING, DISJUNCTIVE).

机译:估算土壤性质的地统计学方法(克里格,科克里格,宾格法)。

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摘要

Geostatistical methods were investigated in order to find efficient and accurate means for estimating a regionalized random variable in space based on limited sampling.;The BST was found to exhibit strong spatial auto-correlation (typically greater than 0.65 at 0('+) lagged distance). The CCT generally showed a weaker spatial correlation (values varied from 0.15 to 0.84) which may be due to the length of time required to obtain an "instantaneous" sample as well as wet soil conditions. The GMC was found to be strongly spatially dependent and at least 71 samples were necessary in order to obtain reasonably well behaved covariance functions.;Two linear estimators, the ordinary kriging and cokriging estimators, were investigated and compared in terms of the average kriging variance and the sum of squares error between the actual and estimated values. The estimate was obtained using the jackknifing technique. The results indicate that a significant improvement in the average kriging variance and the sum of squares could be expected by using cokriging for GMC and including 119 BST values in the analysis.;A nonlinear estimator in one variable, the disjunctive kriging estimator, was also investigated and was found to offer improvements over the ordinary kriging estimator in terms of the average kriging variance and the sum of squares error. It was found that additional information at the estimation site is a more important consideration than whether the estimator is linear or nonlinear.;The random variables investigated were (1) the bare soil temperature (BST) and crop canopy temperature (CCT) which were collected from a field located at the University of Arizona's Maricopa Agricultural Center, (2) the bare soil temperature and gravimetric moisture content (GMC) collected from a field located at the Campus Agricultural Center and (3) the electrical conductivity (EC) data collected by Al-Sanabani (1982).;Disjunctive kriging produces an estimator of the conditional probability that the value at an unsampled location is greater than an arbitrary cutoff level. This latter feature of disjunctive kriging is explored and has implications in aiding management decisions.
机译:研究了地统计学方法,以便找到有效和准确的方法来基于有限采样来估计空间中的区域化随机变量。;发现BST具有很强的空间自相关性(通常在0('+)滞后距离处大于0.65) )。 CCT通常显示较弱的空间相关性(值从0.15到0.84不等),这可能是由于获得“瞬时”样品所需的时间长度以及潮湿的土壤条件所致。发现GMC强烈依赖于空间,并且至少需要71个样本才能获得表现良好的协方差函数。;研究了两种线性估计量,即普通克里金法和共同克里金法估计量,并根据平均克里金法方差和实际值和估计值之间的平方和。估计值是使用折刀技术获得的。结果表明,通过对GMC使用协同克里金法并在分析中包含119个BST值,可以期望平均克里金法方差和平方和有显着改善。;还研究了一个变量的非线性估计量,即分离克里金法估计量并且发现它在平均克里金法方差和平方误差总和方面比普通克里金法估计器有所改进。发现估计点的附加信息比估计器是线性的还是非线性的要重要得多。研究的随机变量是(1)收集的裸土温度(BST)和作物冠层温度(CCT)。 (2)从位于校园农业中心的田地中收集的裸露土壤温度和重量水分含量(GMC),以及(3)通过收集的电导率(EC)数据。 Al-Sanabani(1982);“析取克里金法”产生了一个条件概率的估计量,该条件概率是未采样位置的值大于任意截止值。探索了分离式克里金法的后一个特征,这对协助管理决策具有启示意义。

著录项

  • 作者

    YATES, SCOTT RAYMOND.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Agriculture General.
  • 学位 Ph.D.
  • 年度 1985
  • 页码 230 p.
  • 总页数 230
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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