use.simple.cov = TRUE) that bypasses the
measurement-uncertainty correction for faster computation in large,
well-separated samples.incomplete = TRUE argument (using a two-pass row-filtering
strategy).step1 argument) to reuse across multiple structural models
or apply to different sample subsets.use.modal.assignment).rebase argument to allow users to easily
change the reference latent class for the multinomial logit
parameterization while maintaining invariant log-likelihoods.fitZ_from_fit0())
to generate stable starting values for the three-step structural
model.tseLCA objects:
summary(), coef(), vcov(), and
plot() (which delegates to ‘multilevLCA’ for item-profile
visualization).generate_data()) that
replicates the Bakk & Kuha (2018) simulation study design for both
covariates and distal outcomes under varying separation conditions.T/F with
TRUE/FALSE throughout internal codebase\value tags to all exported functions missing
them, including bk2018_params.inst/examples: examples now write to
tempdir() instead of the home filespace.inst/examples: commented out
rm(list = ls()) calls.inst/examples: commented out
install.packages() calls.
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