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\name{optimize}
\title{One Dimensional Optimization}
\usage{
optimise(\dots\dots\dots)
optimize(f=, interval=, lower=min(interval),
        upper=max(interval), maximum=FALSE,
        tol=.Machine$double.eps^0.25, ...)
}
\alias{optimize}
\alias{optimise}
\arguments{
\item{f}{the function to be optimized. The function is
either minimized or maximized over its first argument
depending on the value of \code{maximum}.}
\item{interval}{a vector containing the end-points of the interval
to be searched for the minimum.}
\item{lower}{the lower end point of the interval
to be searched.}
\item{upper}{the upper end point of the interval
to be searched.}
\item{tol}{the desired accuracy.}
\item{...}{additional arguments to \code{f}.}
}
\description{
The function \code{optimize} searches the interval from
\code{lower} to \code{upper} for a minimum or maximum of
the function \code{f} with respect to its first argument.

It uses Fortran code (from Netlib) based on algorithms given in the
reference.

\code{optimise} is an alias for \code{optimize}.
}
\value{
A list with components \code{minimum} (or \code{maximum})
and \code{objective} which give the location of the minimum (or maximum)
and the value of the function at that point.
}
\references{
Brent, R. (1973).
\emph{Algorithms for Minimization without Derivatives}.
Englewood Cliffs N.J.: Prentice-Hall.
}
\seealso{
\code{\link{nlm}}, \code{\link{uniroot}}.
}
\examples{
f <- function (x,a) (x-a)^2
xmin <- optimize(f, c(0, 1), tol=0.0001, a=1/3)
xmin
}
\keyword{optimize}