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"Predicting the Finite Population Distribution Function under a Multile" by Sumonkanti Das, Nicola Salvati et al. - Vimarsana News

"Predicting the Finite Population Distribution Function under a Multile" by Sumonkanti Das, Nicola Salvati et al.

Chambers and Dunstan proposed a model-based predictor of the population distribution function that makes use of auxiliary population information under a general sampling design. Subsequently, Rao, Kovar, and Mantel proposed design-based ratio and difference predictors of the population distribution function that also use this auxiliary information. Both predictors (CD and RKM) assume a single level model for the target population. In this article we develop predictors of the finite population distribution function for a population that follows a multilevel model. These new predictors use the s...

Source: uow.edu.au
Can machine learning algorithms identify patients at risk of a delay in starting cancer treatment? - Vimarsana News

Can machine learning algorithms identify patients at risk of a delay in starting cancer treatment?

Multi-level machine learning models for estimating the risk of delay between cancer diagnosis and treatment initiation in a large group of cancer patients.

"The Effects of Omitting Components in a Multilevel Model With Social N" by Thomas Suesse, David Steel et al. - Vimarsana News

"The Effects of Omitting Components in a Multilevel Model With Social N" by Thomas Suesse, David Steel et al.

Multilevel models are often used to account for the hierarchical structure of social data and the inherent dependencies to produce estimates of regression coefficients, variance components associated with each level, and accurate standard errors. Social network analysis is another important approach to analysing complex data that incoproate the social relationships between a number of individuals. Extended linear regression models, such as network autoregressive models, have been proposed that include the social network information to account for the dependencies between persons. In this artic...

Source: uow.edu.au