Robustness in spatial studies I: minimax prediction

We develop and test robust methods for estimation and for prediction in spatial studies. We assume that a stochastic process is measured, with error, at various locations. The variance/covariance structures of this process and of the measurement errors are only approximately known; in the face of th...

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Published inEnvironmetrics (London, Ont.) Vol. 16; no. 2; pp. 191 - 203
Main Author Wiens, Douglas P.
Format Journal Article
LanguageEnglish
Published Chichester, UK John Wiley & Sons, Ltd 01.03.2005
Wiley
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ISSN1180-4009
1099-095X
DOI10.1002/env.700

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Abstract We develop and test robust methods for estimation and for prediction in spatial studies. We assume that a stochastic process is measured, with error, at various locations. The variance/covariance structures of this process and of the measurement errors are only approximately known; in the face of these uncertainties one is to do robust estimation and prediction. We obtain a minimax linear predictor, in which mean squared error loss is first maximized over neighbourhoods quantifying the various sources of model uncertainty, and then minimized over the coefficients of the predictor subject to a constraint of unbiasedness. Robustifications of these methods are then introduced. These are based on generalized M‐estimators, and are robust against contaminated error distributions. In a simulation study the procedures afford a substantial level of robustness when the model inadequacies are present, while being almost as efficient as more classical methods otherwise. Copyright © 2004 John Wiley & Sons, Ltd.
AbstractList We develop and test robust methods for estimation and for prediction in spatial studies. We assume that a stochastic process is measured, with error, at various locations. The variance/covariance structures of this process and of the measurement errors are only approximately known; in the face of these uncertainties one is to do robust estimation and prediction. We obtain a minimax linear predictor, in which mean squared error loss is first maximized over neighbourhoods quantifying the various sources of model uncertainty, and then minimized over the coefficients of the predictor subject to a constraint of unbiasedness. Robustifications of these methods are then introduced. These are based on generalized M‐estimators, and are robust against contaminated error distributions. In a simulation study the procedures afford a substantial level of robustness when the model inadequacies are present, while being almost as efficient as more classical methods otherwise. Copyright © 2004 John Wiley & Sons, Ltd.
Issues considered during the development and testing of robust techniques for estimation and for prediction in spatial studies are reviewed. The project was implemented under the assumption that a stochastic process is measured, with error, at diverse locations. Under these conditions, the variance/covariance structures of this process and of the measurement errors are only approximately known. the study effort derived a mimimax linear predictor. Under the proposed paradigm, the mean square error loss is initially maximized over neighborhoods quantifying the diverse source of model uncertainty. The value is subsequently minimized over the coefficients of the predictor subject to a constraint on unbiasedness.
Author Wiens, Douglas P.
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10.1214/ss/1177012413
10.1002/0471725250
10.1109/TPAS.1971.292925
10.1080/01621459.1993.10476352
10.1080/03610929708832008
10.1007/978-1-4757-3799-8
10.1214/aos/1176349750
10.1002/9781119115151
10.1080/01621459.1992.10475224
10.1016/0378-3758(87)90057-7
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Genton MG, Gorsich DJ. 2002. Nonparametric variogram and covariogram estimation with Fourier-Bessel matrices. Computational Statistics and Data. Analysis 41: 47-57.
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Wiens DP. 2005. Robustness in spatial studies II: minimax design. Environmetrics, accepted.
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Genton (10.1002/env.700-BIB5) 2001
Wiens (10.1002/env.700-BIB20) 2005
Cressie (10.1002/env.700-BIB3) 1993
Field (10.1002/env.700-BIB4) 1994; 22
Lahiri (10.1002/env.700-BIB11) 2003
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References_xml – reference: Merrill HM, Schweppe FC. 1971. Bad data suppression in power system static state estimation. IEEE Transactions on Power Applications and Systems 90: 2718-2725.
– reference: Cressie N. 1993. Statistics for Spatial Data. Wiley: New York.
– reference: Wiens DP. 2005. Robustness in spatial studies II: minimax design. Environmetrics, accepted.
– reference: Lahiri SN. 2003. Resampling Methods for Dependent Data. New York: Springer Verlag.
– reference: Genton MG, Gorsich DJ. 2002. Nonparametric variogram and covariogram estimation with Fourier-Bessel matrices. Computational Statistics and Data. Analysis 41: 47-57.
– reference: Heckman NE. 1987. Robust design in a two treatment comparison in the presence of a covariate. Journal of Statistical Planning and Inference 16: 75-81.
– reference: Militino AF, Ugarte MD. 1997. A GM estimation of the location parameters in a spatial linear model. Communications in Statistics A 26: 1701-1725.
– reference: Silvapullé MJ. 1985. Asymptotic behavior of robust estimators of regression and scale parameters with fixed carriers. Annals of Statistics 13: 1490-1497.
– reference: Simpson DG, Ruppert D, Carroll RJ. 1992. On one-step GM estimates and stability of inferences in linear regression. Journal of the American Statistical Association 87: 439-450.
– reference: Cressie NAC, Hawkins DM. 1980. Robust estimation of the variogram I. Mathematical Geology 12: 115-125.
– reference: Sacks J, Welch WJ, Mitchell TJ, Wynn HP. 1989. Design and analysis of computer experiments. Statistical Science 4: 409-423.
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– reference: Santner TJ, Williams BJ, Notz WI. 2003. The Design and Analysis of Computer Experiments. Springer Verlag: New York.
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Snippet We develop and test robust methods for estimation and for prediction in spatial studies. We assume that a stochastic process is measured, with error, at...
Issues considered during the development and testing of robust techniques for estimation and for prediction in spatial studies are reviewed. The project was...
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SubjectTerms Animal, plant and microbial ecology
Biological and medical sciences
computer experiments
Earth sciences
Earth, ocean, space
Engineering and environment geology. Geothermics
environmental monitoring
Exact sciences and technology
Fundamental and applied biological sciences. Psychology
General aspects. Techniques
generalized M-estimation
isotropic
kriging
M-estimate
Methods and techniques (sampling, tagging, trapping, modelling...)
minimax
Pollution, environment geology
Title Robustness in spatial studies I: minimax prediction
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