A generalized estimating equation method for fitting autocorrelated ordinal score data with an application in horticultural research |
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Authors: | N. R. Parsons R. N. Edmondson S. G. Gilmour |
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Affiliation: | University of Warwick, Coventry, UK; Queen Mary, University of London, UK |
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Abstract: | Summary. Generalized estimating equations for correlated repeated ordinal score data are developed assuming a proportional odds model and a working correlation structure based on a first-order autoregressive process. Repeated ordinal scores on the same experimental units, not necessarily with equally spaced time intervals, are assumed and a new algorithm for the joint estimation of the model regression parameters and the correlation coefficient is developed. Approximate standard errors for the estimated correlation coefficient are developed and a simulation study is used to compare the new methodology with existing methodology. The work was part of a project on post-harvest quality of pot-plants and the generalized estimating equation model is used to analyse data on poinsettia and begonia pot-plant quality deterioration over time. The relationship between the key attributes of plant quality and the quality and longevity of ornamental pot-plants during shelf and after-sales life is explored. |
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Keywords: | Generalized estimating equations Ordinal scores Plant quality scores Proportional odds model Repeated measures |
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