Ordinal logistic regression model: an application to pregnancy outcomes

dc.contributor.authorAdeleke, K.A.
dc.contributor.authorAdepoju, A.A.
dc.date.accessioned2022-09-01T09:39:45Z
dc.date.available2022-09-01T09:39:45Z
dc.date.issued2010
dc.description.abstractProblem statement: This research aimed at modeling a categorical response i.e., pregnancy outcome in terms of some predictors, determines the goodness of fit as well as validity of the assumptions and selecting an appropriate and more parsimonious model thereby proffered useful suggestions and recommendations. Approach: An ordinal logistic regression model was used as a tool to model the three major factors viz., environmental (previous cesareans, service availability), behavioral (antenatal care, diseases) and demographic (maternal age, marital status and weight) that affected the outcomes of pregnancies (livebirth, stillbirth and abortion). Results: The fit, of the model was illustrated with data obtained from records of 100 patients at Ijebu-Ode, State Hospital in Nigeria. The tested model showed good fit and performed differently depending on categorization of outcome, adequacy in relation to assumptions, goodness of fit and parsimony. We however see that weight and diseases increase the likelihood of favoring a higher category i.e., (livebirth), while medical service availability, marital status age, antenatal and previous cesareans reduce the likelihood/chance of having stillbirth. Conclusion/Recommendations: The odds of being in either of these categories i.e., livebirth or stillbirth showed that women with baby’s weight less than 2.5 kg are 18.4 times more likely to have had a livebirth than are women with history of babies 2.5 kg. Age (older age and middle aged) women are one halve (1.5) more likely to occur than lower aged women, likewise is antenatal, (high parity and low parity) are more likely to occur 1.5 times than nullipara.en_US
dc.identifier.issn1549-3644
dc.identifier.otherui_art_adeleke_ordinal_2010
dc.identifier.otherJournal of Mathematics and Statistics 6(3) 2010. Pp.279-285
dc.identifier.urihttp://ir.library.ui.edu.ng/handle/123456789/7647
dc.language.isoen_USen_US
dc.publisherScience Publicationsen_US
dc.subjectOrdinal logisticsen_US
dc.subjectRegression modelen_US
dc.subjectPregnancy outcomeen_US
dc.subjectCategorical data|en_US
dc.subjectProportional oddsen_US
dc.titleOrdinal logistic regression model: an application to pregnancy outcomesen_US
dc.typeArticleen_US

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