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Latent class analysis is a probabilistic modeling algorithm that allows clustering of data and statistical inference. There has been a recent upsurge in the application of latent class analysis in the fields of critical care, respiratory medicine, and beyond. In this review, we present a brief overview of the principles behind latent class analysis. Furthermore, in a stepwise manner, we outline the key processes necessary to perform latent class analysis including some of the challenges and pitfalls faced at each of these steps. The review provides a one-stop shop for investigators seeking to apply latent class analysis to their data.
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Sinha et al. (Sun,) studied this question.
synapsesocial.com/papers/69d851688c03fbaff8beef94 — DOI: https://doi.org/10.1097/ccm.0000000000004710
Pratik Sinha
University of California, San Francisco
Carolyn S. Calfee
University of California, San Francisco
Kevin Delucchi
University of California, San Francisco
Critical Care Medicine
University of California, San Francisco
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