2022
DOI: 10.48550/arxiv.2202.05124
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Describing complex disease progression using joint latent class models for multivariate longitudinal markers and clinical endpoints

Abstract: Neurodegenerative diseases are characterized by numerous markers of progression and clinical endpoints. For instance, Multiple System Atrophy (MSA), a rare neurodegenerative synucleinopathy, is characterized by various combinations of progressive autonomic failure and motor dysfunction, and a very poor prognosis. Describing the progression of such complex and multi-dimensional diseases is particularly difficult. One has to simultaneously account for the assessment of multivariate markers over time, the occurre… Show more

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Cited by 3 publications
(2 citation statements)
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References 34 publications
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“…How to account for both layers of uncertainty could be a direction of future research. Other approaches not considered here include functional principal components analysis of activity profiles measured by accelerometers ( Xu et al, 2019 ; Xiao et al, 2022 ) and latent class models of longitudinal biomarkers ( Proust-Lima et al, 2014 , 2022 ). A recent review of CoDA, also discusses other analytical approaches for compositional data, including advocating for alternative, simpler transformations to the ilr -transformation ( Greenacre et al, 2022 ).…”
Section: Discussionmentioning
confidence: 99%
“…How to account for both layers of uncertainty could be a direction of future research. Other approaches not considered here include functional principal components analysis of activity profiles measured by accelerometers ( Xu et al, 2019 ; Xiao et al, 2022 ) and latent class models of longitudinal biomarkers ( Proust-Lima et al, 2014 , 2022 ). A recent review of CoDA, also discusses other analytical approaches for compositional data, including advocating for alternative, simpler transformations to the ilr -transformation ( Greenacre et al, 2022 ).…”
Section: Discussionmentioning
confidence: 99%
“…In particular, we focus on the Integrated Classification Likelihood (ICL) criterion adopted when both model fitting and identification of natural groupings in the data are relevant for the analysis 31,32 . ICL criterion is defined as a combination of both the Bayesian Information Criterion (BIC) criterion and the posterior class membership and lower ICL values are associated with better model fit.…”
Section: Discussionmentioning
confidence: 99%