An object of this class holds estimates of each parameter at each iteration of the MCMC simulation.
theta
means of each batch and component
sigma2
variances of each batch and component
pi
mixture probabilities
mu
overall mean in a marginal. In batch model, averaged across batches
tau2
overall variance in a marginal model. In a batch model, weighted average by precision across batches.
nu.0
shape parameter for sigma.2 distribution
sigma2.0
rate parameter for sigma.2 distribution
logprior
log likelihood of prior.
loglik
log likelihood.
zfreq
table of z.
predictive
posterior predictive distribution
zstar
needed for plotting posterior predictive distribution
k
integer specifying number of components
iter
integer specifying number of MCMC simulations
B
integer specifying number of batches
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