JOURNAL ARTICLE

Inference and local influence assessment in skew-normal null intercept measurement error model

Víctor H. LachosLourdes C. MontenegroHeleno Bolfarine

Year: 2008 Journal:   Journal of Statistical Computation and Simulation Vol: 78 (3)Pages: 395-419   Publisher: Taylor & Francis

Abstract

In this article, we discuss inferential aspects of the measurement error regression models with null intercepts when the unknown quantity x (latent variable) follows a skew normal distribution. We examine first the maximum-likelihood approach to estimation via the EM algorithm by exploring statistical properties of the model considered. Then, the marginal likelihood, the score function and the observed information matrix of the observed quantities are presented allowing direct inference implementation. In order to discuss some diagnostics techniques in this type of models, we derive the appropriate matrices to assessing the local influence on the parameter estimates under different perturbation schemes. The results and methods developed in this paper are illustrated considering part of a real data set used by Hadgu and Koch [1999, Application of generalized estimating equations to a dental randomized clinical trial. Journal of Biopharmaceutical Statistics, 9, 161-178].

Keywords:
Mathematics Inference Skew Statistics Statistical inference Latent variable Null hypothesis Econometrics Likelihood function Applied mathematics Estimation theory Computer science Artificial intelligence

Metrics

11
Cited By
0.27
FWCI (Field Weighted Citation Impact)
36
Refs
0.59
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Statistical Distribution Estimation and Applications
Physical Sciences →  Mathematics →  Statistics and Probability
Statistical Methods and Bayesian Inference
Physical Sciences →  Mathematics →  Statistics and Probability
Advanced Statistical Process Monitoring
Social Sciences →  Decision Sciences →  Statistics, Probability and Uncertainty

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