Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I want to modify the properties of the leaves in a dendrogram produced from plot of an hclust object. Minimally, I want to change the colors, but any help you can provide will be appreciated.

I did try to google the answer, but but every solution that I saw seemed alot harder than what I would have guessed.

share|improve this question

3 Answers 3

up vote 16 down vote accepted

A while ago, Joris Meys kindly provided me with this snippet of code that changes the color of leaves. Modify it to reflect your attributes.

clusDendro <- as.dendrogram(Clustering)
labelColors <- c("red", "blue", "darkgreen", "darkgrey", "purple")

## function to get colorlabels
colLab <- function(n) {
   if(is.leaf(n)) {
       a <- attributes(n)
       # clusMember - a vector designating leaf grouping
       # labelColors - a vector of colors for the above grouping
       labCol <- labelColors[clusMember[which(names(clusMember) == a$label)]]
       attr(n, "nodePar") <- c(a$nodePar, lab.col = labCol)

## Graph
clusDendro <- dendrapply(clusDendro, colLab)
op <- par(mar = par("mar") + c(0,0,0,2))
     main = "Major title",
     horiz = T, type = "triangle", center = T)

share|improve this answer
Just a note: if you want to change the label just return something different from n in colLab (maybe it is obvious, but I remembering spending a good afternoon to realise that!) – nico Jan 18 '11 at 7:45

It is not clear what you want to use it for, but I often need to identify a branch in a dendrogram. I've hacked the rect.hclust method to add a density and label input.

You would call it like this:

k <- 3 # number of branches to identify <- c('1','2','3')
required.density <- 10 # the density of shading lines, in lines per inch 
rect.hclust.nice(tree, k,, density=density.required)

Here is the function

rect.hclust.nice = function (tree, k = NULL, which = NULL, x = NULL, h = NULL, border = 2, 
    cluster = NULL,  density = NULL,labels = NULL, ...) 
    if (length(h) > 1 | length(k) > 1) 
        stop("'k' and 'h' must be a scalar")
    if (!is.null(h)) {
        if (!is.null(k)) 
            stop("specify exactly one of 'k' and 'h'")
        k <- min(which(rev(tree$height) < h))
        k <- max(k, 2)
    else if (is.null(k)) 
        stop("specify exactly one of 'k' and 'h'")
    if (k < 2 | k > length(tree$height)) 
        stop(gettextf("k must be between 2 and %d", length(tree$height)), 
            domain = NA)
    if (is.null(cluster)) 
        cluster <- cutree(tree, k = k)
    clustab <- table(cluster)[unique(cluster[tree$order])]
    m <- c(0, cumsum(clustab))
    if (!is.null(x)) {
        if (!is.null(which)) 
            stop("specify exactly one of 'which' and 'x'")
        which <- x
        for (n in 1L:length(x)) which[n] <- max(which(m < x[n]))
    else if (is.null(which)) 
        which <- 1L:k
    if (any(which > k)) 
        stop(gettextf("all elements of 'which' must be between 1 and %d", 
            k), domain = NA)
    border <- rep(border, length.out = length(which))
    labels <- rep(labels, length.out = length(which))
    retval <- list()
    for (n in 1L:length(which)) {
        rect(m[which[n]] + 0.66, par("usr")[3L], m[which[n] + 
            1] + 0.33, mean(rev(tree$height)[(k - 1):k]), border = border[n], col = border[n], density = density, ...)
        text((m[which[n]] + m[which[n] + 1]+1)/2, grconvertY(grconvertY(par("usr")[3L],"user","ndc")+0.02,"ndc","user"),labels[n])
        retval[[n]] <- which(cluster == as.integer(names(clustab)[which[n]]))
share|improve this answer
I'd say, here is part of the function... – Joris Meys Jan 18 '11 at 10:05
here is the rest of the function :) – skullkey Jan 18 '11 at 10:53
Dear skullkey, I've created a rect.dendrogram function. And, between other things, integrated your modification of adding "text" to the function. If interested, you may find the code here: Please get in touch if you want your real name to appear in the credits in the function's documentation. With regards, Tal Galili – Tal Galili Jul 18 '14 at 4:16

Here is a solution for this question using a new package called "dendextend", built exactly for this sort of thing.

You can see many examples in the presentations and vignettes of the package, in the "usage" section in the following URL:

Here is the solution for this question:

# define dendrogram object to play with:
dend <- as.dendrogram(hclust(dist(USArrests[1:3,]), "ave"))
# loading the package
install.packages('dendextend') # it is now on CRAN
library(dendextend)# let's add some color:
labels_colors(dend) <- 2:4

enter image description here

share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.