LAM: Some Latent Variable Models
    Includes some procedures for latent variable modeling with a 
    particular focus on multilevel data.
    The 'LAM' package contains mean and covariance structure modelling
    for multivariate normally distributed data (mlnormal(); Longford, 1987;
    <doi:10.1093/biomet/74.4.817>), a general Metropolis-Hastings algorithm 
    (amh(); Roberts & Rosenthal, 2001, <doi:10.1214/ss/1015346320>) and 
    penalized maximum likelihood estimation (pmle(); Cole, Chu & Greenland, 
    2014; <doi:10.1093/aje/kwt245>).
| Version: | 0.7-22 | 
| Depends: | R (≥ 3.1) | 
| Imports: | CDM, graphics, Rcpp, sirt, stats, utils | 
| LinkingTo: | Rcpp, RcppArmadillo | 
| Suggests: | coda, expm, MASS, numDeriv, TAM | 
| Enhances: | lavaan, lme4 | 
| Published: | 2024-07-15 | 
| DOI: | 10.32614/CRAN.package.LAM | 
| Author: | Alexander Robitzsch [aut,cre] | 
| Maintainer: | Alexander Robitzsch  <robitzsch at ipn.uni-kiel.de> | 
| License: | GPL-2 | GPL-3 [expanded from: GPL (≥ 2)] | 
| URL: | https://github.com/alexanderrobitzsch/LAM,
https://sites.google.com/site/alexanderrobitzsch2/software | 
| NeedsCompilation: | yes | 
| Citation: | LAM citation info | 
| Materials: | README, NEWS | 
| In views: | Psychometrics | 
| CRAN checks: | LAM results | 
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