Modeling Maternal Blood Loss Using the Exponentiated Kumaraswamy–Inverse Lomax Distribution: Applications to Diverse Real-Life Data

dc.contributor.authorBenson Ade Eniola Afere
dc.contributor.authorDeborah Aladi Daikwo
dc.contributor.authorVincent, Ekele Aguda
dc.contributor.authorYahaya Baba Usman
dc.contributor.authorSule Omeiza Bashiru
dc.contributor.authorBolarinwa Bolaji
dc.date.accessioned2026-08-13T14:43:57Z
dc.date.issued2026
dc.description.abstractThis study introduces the Exponentiated Kumaraswamy–Inverse Lomax (EK–IL) distribution as a flexible and robust statistical model for analyzing maternal blood loss during delivery. The proposed distribution effectively accommodates skewness and heavy-tailed behavior, which are common characteristics of clinical data. Model parameters are estimated using the maximum likelihood method, and the performance of the EK–IL distribution is evaluated through goodness-of-fit measures and information criteria. Comparative analyses demonstrate that the proposed model outperforms several well-known competing distributions. Further validation using four additional real datasets confirms the adaptability and robustness of the EK–IL distribution. The results suggest that the EK–IL model provides a powerful framework for medical data analysis and broader applications in applied statistics
dc.identifier.citationdoi: 10.28924/ada/stat.6.7
dc.identifier.uridoi: 10.28924/ada/stat.6.7
dc.identifier.urihttps://repository.nmu.edu.ng/handle/123456789/589
dc.language.isoen
dc.publisherEur. J. Stat.
dc.subjectKumaraswamy distribution
dc.subjectinverse Lomax distribution
dc.subjectmaternal blood loss
dc.subjectmaximum likelihood estimation
dc.subjectgoodness-of-fit tests
dc.subjectMonte Carlo simulation
dc.titleModeling Maternal Blood Loss Using the Exponentiated Kumaraswamy–Inverse Lomax Distribution: Applications to Diverse Real-Life Data
dc.typeArticle

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