Part II: A step-by-step guide to latent class analysis. 2023

Kayvan Aflaki, and Simone Vigod, and Joel G Ray
Institute of Medical Science, University of Toronto, Toronto, Ontario, Canada.

Latent class analysis (LCA) is an analytical approach for the identification of more homogeneous subgroups within an otherwise dissimilar patient population. In the current paper, Part II, we present a practical step-by-step guide for LCA of clinical data, including when LCA might be applied, selecting indicator variables, and choosing a final class solution. We also identify common pitfalls of LCA, and related solutions.

UI MeSH Term Description Entries

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