Given a design matrix and vector of binary responses, this function evaluates the log-likelihood function for the Probit regression model.
ProbitLogLik(beta.hat, X, y)
A vector of length p. The current estimates of the regression parameters.
The n x p design matrix for the Probit regression model.
Vector of length n containing binary outcomes (either 0 or 1).
A scalar - the value of the log-likelihood at beta.hat.
# NOT RUN {
n <- 200
npars <- 5
true.beta <- .5*rt(npars, df=2) + 2
XX <- matrix(rnorm(n*npars), nrow=n, ncol=npars)
yy <- ProbitSimulate(true.beta, XX)
initial.beta <- rep(0.0, npars)
ll <- ProbitLogLik(initial.beta, XX, yy)
# }
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