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Journal ArticleDOI

Approximate inference in generalized linear mixed models

TLDR
In this paper, generalized linear mixed models (GLMM) are used to estimate the marginal quasi-likelihood for the mean parameters and the conditional variance for the variances, and the dispersion matrix is specified in terms of a rank deficient inverse covariance matrix.
Abstract
Statistical approaches to overdispersion, correlated errors, shrinkage estimation, and smoothing of regression relationships may be encompassed within the framework of the generalized linear mixed model (GLMM). Given an unobserved vector of random effects, observations are assumed to be conditionally independent with means that depend on the linear predictor through a specified link function and conditional variances that are specified by a variance function, known prior weights and a scale factor. The random effects are assumed to be normally distributed with mean zero and dispersion matrix depending on unknown variance components. For problems involving time series, spatial aggregation and smoothing, the dispersion may be specified in terms of a rank deficient inverse covariance matrix. Approximation of the marginal quasi-likelihood using Laplace's method leads eventually to estimating equations based on penalized quasilikelihood or PQL for the mean parameters and pseudo-likelihood for the variances. Im...

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Citations
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Journal ArticleDOI

Analysis of dichotomous outcome data for community intervention studies.

TL;DR: Several of the available methods that can be applied in community intervention settings, including random effects models, generalized estimating equations and methods based on the calculation of `design effects', as implemented in the computer package SUDAAN are compared and compared.
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An ecometric analysis of neighbourhood cohesion.

TL;DR: Assessment of the properties of the adapted neighbourhood cohesion scale using factor analysis and ecometric analysis extended to an ordinal scale has shown that the items allow fine discrimination between individuals, and is appropriate for use in the measurement of neighbourhood cohesion at small-area-level in future studies of neighbourhoods and health.
Journal ArticleDOI

Bankruptcy prediction in Norway: a comparison study

TL;DR: In this article, the authors developed statistical models for bankruptcy prediction of Norwegian firms in the limited liability sector using annual balance sheet information using generalized linear, generalized linear mixed and generalized additive models in a discrete hazard setting.
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Bootstrap tests for variance components in generalized linear mixed models.

TL;DR: In this article, a parametric bootstrap test was proposed to test whether a random effects variance component is zero under the null hypothesis, which is more powerful than the usual asymptotic score test based on a mixture of chi-squares.
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Timidity in Japanese quail: effects of vitamin C and divergent selection for adrenocortical response.

TL;DR: It is suggested that vitamin C supplementation alleviated fearfulness, regardless of existing line differences in this behavioural trait, and further support the hypothesis that decreased fearfulness has accompanied genetic selection for reduced adrenocortical responsiveness.
References
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Book

Generalized Linear Models

TL;DR: In this paper, a generalization of the analysis of variance is given for these models using log- likelihoods, illustrated by examples relating to four distributions; the Normal, Binomial (probit analysis, etc.), Poisson (contingency tables), and gamma (variance components).
Journal ArticleDOI

Longitudinal data analysis using generalized linear models

TL;DR: In this article, an extension of generalized linear models to the analysis of longitudinal data is proposed, which gives consistent estimates of the regression parameters and of their variance under mild assumptions about the time dependence.