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\name{contrast}\alias{contr.helmert}\alias{contr.poly}\alias{contr.sum}\alias{contr.treatment}\title{Contrast Matrices}\description{Return a matrix of contrasts.}\usage{contr.helmert(n, contrasts = TRUE)contr.poly(n, contrasts = TRUE)contr.sum(n, contrasts = TRUE)contr.treatment(n, base = 1, contrasts = TRUE)}\arguments{\item{n}{a vector of levels for a factor, or the number of levels.}\item{contrasts}{a logical indicating whether contrasts should becomputed.}\item{base}{an integer specifying which group is considered thebaseline group. Ignored if \code{contrasts} is \code{FALSE}.}}\details{These functions are used for creating contrast matrices for use infitting analysis of variance and regression models. The columns ofthe resulting matrices contain contrasts which can be used for codinga factor with \code{n} levels. The returned value contains thecomputed contrasts. If the argument \code{contrasts} is \code{FALSE}then a square indicator matrix is returned.Note that as from \R version 0.62.2, \code{contr.poly} returnscontrasts based on orthogonal (rather than raw) polynomials.}\value{A matrix with \code{n} rows and \code{k} columns, with \code{k=n-1} if\code{contrasts} is \code{TRUE} and \code{k=n} if \code{contrasts} is\code{FALSE}.}\seealso{\code{\link{contrasts}},\code{\link{C}},and\code{\link{aov}},\code{\link{glm}},\code{\link{lm}}.}\examples{(cH <- contr.helmert(4))apply(cH, 2,sum) # column sums are 0!crossprod(cH) # diagonal -- columns are orthogonalcontr.helmert(4, contrasts = FALSE) # just the 4 x 4 identity matrix(cT <- contr.treatment(5))all(crossprod(cT) == diag(4)) # TRUE: even orthonormal(cP <- contr.poly(3)) # Linear and Quadraticzapsmall(crossprod(cP), dig=15) # orthonormal up to fuzz}\keyword{design}\keyword{regression}\keyword{array}