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:: Volume 13, Issue 1 (9-2019) ::
JSS 2019, 13(1): 77-97 Back to browse issues page
Analysis of Gaussian Spatial Models with Covariate Measurement Error
Vahid Tadayon * , Abdolrahman Rasekh
Abstract:   (6946 Views)

Uncertainty is an inherent characteristic of biological and geospatial data which is almost made by measurement error in the observed values of the quantity of interest. Ignoring measurement error can lead to biased estimates and inflated variances and so an inappropriate inference. In this paper, the Gaussian spatial model is fitted based on covariate measurement error. For this purpose, we adopt the Bayesian approach and utilize the Markov chain Monte Carlo algorithms and data augmentations to carry out calculations. The methodology is illustrated using simulated data.

Keywords: Gaussian Spatial Model, Measurement Error, Bayesian Analysis.
Full-Text [PDF 286 kb]   (2499 Downloads)    
Type of Study: Applied | Subject: Spatial Statistics
Received: 2016/03/19 | Accepted: 2018/06/29 | Published: 2019/02/25
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Tadayon V, Rasekh A. Analysis of Gaussian Spatial Models with Covariate Measurement Error. JSS 2019; 13 (1) :77-97
URL: http://jss.irstat.ir/article-1-457-en.html


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Creative Commons License This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.
Volume 13, Issue 1 (9-2019) Back to browse issues page
مجله علوم آماری – نشریه علمی پژوهشی انجمن آمار ایران Journal of Statistical Sciences

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