An errors-in-variables model based on the Birnbaum–Saunders distribution and its diagnostics with an application to earthquake data

被引:0
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作者
Jalmar M. F. Carrasco
Jorge I. Figueroa-Zuñiga
Victor Leiva
Marco Riquelme
Robert G. Aykroyd
机构
[1] Universidade Federal da Bahia,Department of Statistics
[2] Universidad de Concepción,Department of Statistics
[3] Pontificia Universidad Católica de Valparaíso,School of Industrial Engineering
[4] Universidad de Valparaíso,Institute of Statistics
[5] University of Leeds,Department of Statistics
关键词
Diagnostic techniques; Likelihood methods; Measurement errors; Monte Carlo simulation; Ox and R software; Regression analysis;
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摘要
Regression modelling where explanatory variables are measured with error is a common problem in applied sciences. However, if inappropriate analysis methods are applied, then unreliable conclusions can be made. This work deals with estimation and diagnostic analytics in regression modelling based on the Birnbaum–Saunders distribution using additive measurement errors. The maximum pseudo-likelihood and regression calibration methods are used for parameter estimation. We also carry out a residual analysis and apply global and local diagnostic techniques in order to detect anomalous and potentially influential observations. Simulations are conducted to validate the proposed approach and to evaluate performance. A real-world data set, related to earthquakes, is used to illustrate the new approach.
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页码:369 / 380
页数:11
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