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\name{Contrast}\title{Contrast Matrices}\usage{contr.helmert(n, contrasts=TRUE)contr.poly(n, contrasts=TRUE)contr.sum(n, contrasts=TRUE)contr.treatment(n, base=1, contrasts=TRUE)}\alias{contr.helmert}\alias{contr.poly}\alias{contr.sum}\alias{contr.treatment}\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}.The base argument to \code{contr.treatment()} allows you to specifywhich group is considered the baseline group.These functions are used for creating contrast matricesfor use in fitting analysis of variance and regression models.The columns of the resulting matrices contain contrastswhich can be used for coding a factor with \code{n} levels.The returned value contains the computed contrasts.If the argument \code{contrasts} is \code{FALSE} then anadditional column of ones is prepended to the matrix.Note that as from \R version 0.62.2, \code{contr.poly} returns contrastsbased on orthogonal (rather than raw) polynomials.}\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 orthogonal(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}