Related Topics in Partially Linear Models: Semi-parametric Regression, Measurement Errors,missing Data, Single-index Models, Regression Calibration - Hua Liang - Grāmatas - VDM Verlag - 9783639072396 - 2008. gada 12. augusts
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Related Topics in Partially Linear Models: Semi-parametric Regression, Measurement Errors,missing Data, Single-index Models, Regression Calibration

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Various effects have been made to remedy the curse ofdimensionality for high-dimensional data. Partiallylinear models, as an effective dimensional reductiontechnique, have been intensively studied inliterature. We develop methodology for the estimationof regression parameters in partially linear modelswhen the covariates are measured with errors or maybe missing. We are particularly concerned with twocases where we observe a surrogate of the covariate. The second case focuses on the linear covariatebeing incompletely observable. We give thecorresponding solutions for the above problems. Thefirst solution employs the technique of correctingfor attenuation. The second is proposed using inverseweight probability. The resulting estimators areproven to be asymptotically normal. The model is usedto analyze a data set from the Framingham Heart Studyfor the purpose of illustrating the methods. We alsoinvestigate the semiparametric partially linearsingle index errors-in-variables models, for whichtwo classes of estimators are proposed, and thecorresponding theoretical properties are derived andcompared.

Mediji Grāmatas     Paperback Book   (Grāmata ar mīksto vāku un līmēto muguru)
Izlaists 2008. gada 12. augusts
ISBN13 9783639072396
Izdevēji VDM Verlag
Lapas 100
Izmēri 150 × 220 × 10 mm   ·   145 g
Valoda Angļu  

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