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\name{numeric}
\title{Numeric Vectors}
\alias{numeric}
\alias{as.numeric}
\alias{is.numeric}
\usage{
numeric(length = 0)
as.numeric(x, \dots)
is.numeric(x)
}
\arguments{
  \item{length}{desired length.}
  \item{x}{object to be coerced or tested.}
  \item{\dots}{further arguments passed to or from other methods.}
}
\description{
  \code{numeric} creates a real vector of the specified length.  The
  elements of the vector are all equal to \code{0}.

  \code{as.numeric} attempts to coerce its argument to numeric type
  (either integer or real).

  \code{is.numeric} returns \code{TRUE} if its argument is of type real
  or type integer and \code{FALSE} otherwise.
}
\details{
  \code{is.numeric} is  generic: you can write methods to handle
  specific classes of objects, see \link{InternalMethods}.

  Note that factors are false for \code{is.numeric} but true for
  \code{\link{is.integer}}.
}

\note{
  \emph{\R has no single precision data type.  All real numbers are
    stored in double precision format}. While \code{as.numeric} is a
  generic function, user methods must be written for \code{as.double},
  which it calls

  \code{as.numeric} for factors yields the codes underlying the factor
    levels, not the numeric representation of the labels.
}
\references{
  Becker, R. A., Chambers, J. M. and Wilks, A. R. (1988)
  \emph{The New S Language}.
  Wadsworth \& Brooks/Cole.
}
\examples{
as.numeric(c("-.1"," 2.7 ","B")) # (-0.1, 2.7, NA)  +  warning
as.numeric(factor(5:10))
}
\keyword{classes}
\keyword{attribute}