7

I have produced a dendrogram after running hierarchical clustering analysis in R using the below code. I am now trying to colour the labels according to another factor variable, which is saved as a vector. The closest that I have come to achieving this is to colour code the branches using the ColourDendrogram function in the sparcl package. If possible, I would prefer to colour-code the labels. I have found answers to a similar questions at the following links Color branches of dendrogram using an existing column & Colouring branches in a dendrogram in R, but I have not been able to work out how to convert the example code for my purpose. Below is some example data and code.

> dput(df)
structure(list(labs = c("a1", "a2", "a3", "a4", "a5", "a6", "a7", 
"a8", "b1", "b2", "b3", "b4", "b5", "b6", "b7"), var = c(1L, 
1L, 2L, 1L, 2L, 2L, 1L, 2L, 1L, 2L, 1L, 1L, 2L, 2L, 2L), td = c(13.1, 
14.5, 16.7, 12.9, 14.9, 15.6, 13.4, 15.3, 12.8, 14.5, 14.7, 13.1, 
14.9, 15.6, 14.6), fd = c(2L, 3L, 3L, 1L, 2L, 3L, 2L, 3L, 2L, 
4L, 2L, 1L, 4L, 3L, 3L)), .Names = c("labs", "var", "td", "fd"
), class = "data.frame", row.names = c(NA, -15L))

df.nw = df[,3:4]
labs = df$labs

d = dist(as.matrix(df.nw))                          # find distance matrix 
hc = hclust(d, method="complete")                   # apply hierarchical clustering 
plot(hc, hang=-0.01, cex=0.6, labels=labs, xlab="") # plot the dendrogram

hcd = as.dendrogram(hc)                             # convert hclust to dendrogram 
plot(hcd, cex=0.6)                                  # plot using dendrogram object

Var = df$var                                        # factor variable for colours
varCol = gsub("1","red",Var)                        # convert numbers to colours
varCol = gsub("2","blue",varCol)

# colour-code dendrogram branches by a factor 
library(sparcl)
ColorDendrogram(hc, y=varCol, branchlength=0.9, labels=labs,
                xlab="", ylab="", sub="")   

Any advise on how to do this would be greatly appreciated.

4

Try

# ... your code
colLab <- function(n) {
  if(is.leaf(n)) {
    a <- attributes(n)
    attr(n, "label") <- labs[a$label]
    attr(n, "nodePar") <- c(a$nodePar, lab.col = varCol[a$label]) 
  }
  n
}
plot(dendrapply(hcd, colLab))

(via)

| improve this answer | |
  • @ luke: thanks for your answer. This gives the correct colours, but does not allow for user-specific labels (those specified with 'labs' above). Following the code found at stackoverflow.com/questions/14118033/… I tried adding the following to the function attr(n, "label") <- labs but then ended up with a dendrogram with illegible labels (it looked like R had overwritten a bunch of different labels on top of one another). – jjulip Dec 15 '14 at 19:10
  • I also tried changing the df row names prior to running hclust and this did not work. Any ideas on how I can get coloured user-specific labels? thanks for your help. – jjulip Dec 15 '14 at 19:10
  • @jjulip Try using attr(n, "label") <- labs[a$label] instead of attr(n, "label") <- labs. – lukeA Dec 15 '14 at 19:43
2

For coloring your labels, it would be the easiest to use the labels_colors function from the dendextend package. For example:

# install.packages("dendextend")
library(dendextend)

small_iris <- iris[c(1, 51, 101, 2, 52, 102), ]
dend <- as.dendrogram(hclust(dist(small_iris[,-5])))
# Like: 
# dend <- small_iris[,-5] %>% dist %>% hclust %>% as.dendrogram

# By default, the dend has no colors to the labels
labels_colors(dend)
par(mfrow = c(1,2))
plot(dend, main = "Original dend")

# let's add some color:
colors_to_use <- as.numeric(small_iris[,5])
colors_to_use
# But sort them based on their order in dend:
colors_to_use <- colors_to_use[order.dendrogram(dend)]
colors_to_use
# Now we can use them
labels_colors(dend) <- colors_to_use
# Now each state has a color
labels_colors(dend) 
plot(dend, main = "A color for every Species")

For more details on the package, you can have a look at its vignette.

enter image description here

| improve this answer | |
  • @ Tal: Just saw this. Thanks for the answer! Really helpful. – jjulip Jan 8 '15 at 14:55
  • Thanks @jjulip. Cheers, T – Tal Galili Jan 8 '15 at 21:38
  • Hi @jjulip - I've added a more detailed answer. I hope you might consider marking it as a solution. Thanks. – Tal Galili Jan 31 '15 at 9:15
  • 1
    Excellent, thanks. I'll check it out! Much appreciated. – jjulip Feb 5 '15 at 20:05

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