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EMLK2D: a computer program for spatial estimation using empirical maximum likelihood kriging

机译:EMLK2D:一种使用经验最大似然克里金法进行空间估计的计算机程序

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The authors describe a Fortran-90 program for empirical maximum likelihood kriging. More efficient estimates are obtained by solving the estimation problem in the 'Gaussian domain' (i.e., using the normal scores of the experimental data), where the simple kriging estimate is equivalent to the maximum likelihood estimate and to the conditional expectation. The transform to normality is done using the empirical cumulative probability distribution function. A Bayesian approach is adopted to ensure a conditionally unbiased estimate, which is obtained as the mean of the posterior distribution. The posterior distribution also provides a complete specification of the probability of the variable and thus provides the basis for a more realistic evaluation of uncertainty by various methods: inverting Gaussian confidence intervals, confidence intervals measured from the posterior distribution, variance measured from the posterior distribution or intervals obtained using the likelihood ratio statistic. A detailed case study is used to demonstrate the use of the program. (c) 2004 Elsevier Ltd. All rights reserved.
机译:作者介绍了用于经验最大似然克里金法的Fortran-90程序。通过解决“高斯域”中的估计问题(即使用实验数据的正常分数)来获得更有效的估计,其中简单的克里金估计等同于最大似然估计和条件期望。使用经验累积概率分布函数可以完成对正态的转换。采用贝叶斯方法来确保有条件的无偏估计,该估计作为后验分布的平均值获得。后验分布还提供了变量概率的完整规范,从而为通过各种方法更不确定性的评估提供了基础:反转高斯置信区间,从后验分布测得的置信区间,从后验分布测得的方差或使用似然比统计量获得的时间间隔。详细的案例研究用于演示该程序的使用。 (c)2004 Elsevier Ltd.保留所有权利。

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