I created a word cloud in R with the code:

wordcloud(words$term, words$freq, random.order=FALSE, colors=colorRampPalette(brewer.pal(9,"Blues"))(32), scale=c(5, .5))

And it works fine only that it colors the terms in such a way that the most frequent appear in the darkest shade of the color and the least frequent in the lightest shade of the color. But I want it to be the other way round. Any pointers? Thanks.

  • 1
    Its doable for sure but you may have to figure out most/least frquent in advance and make a binned variable that you apply a gradient to. This blog post of mine is related and has everything you would need to do this but you'll have to do some leg work: trinkerrstuff.wordpress.com/2012/11/13/gradient-word-clouds – Tyler Rinker Aug 26 '14 at 11:55
  • @TylerRinker nice blog will check it out thank you – Tavi Aug 26 '14 at 11:59
  • If your words are ordered you can just use rev on your color vector. – Victorp Aug 26 '14 at 12:00
  • @Victorp yes they are ordered but where do i put the rev? sorry i'm kinda new to this – Tavi Aug 26 '14 at 12:01
  • Try : wordcloud(words$term, words$freq, random.order=FALSE, colors=rev(colorRampPalette(brewer.pal(9,"Blues"))(32)), scale=c(5, .5)) – Victorp Aug 26 '14 at 12:02
up vote 7 down vote accepted

Good question. You can specify non-random color assignment (random.color = FALSE) which will make it based on frequency then choose a value of colors using a palette that goes in the order you prefer.

For example, if colors = "black", which is the default/example in the Vignette is the opposite of what you want, then choose colors = "Pastel" or some other scale that you prefer.

Personally, I use Color Brewer (RColorBrewer) with a sequential pallete to accomplish this:

pal = brewer.pal(9,"Blues")
wordcloud(words = d$word, 
          freq = d$freq, 
          scale = c(8,.3), 
          random.order = F,
          random.color = F,
          colors = pal) 

Alternately, you could use rev on your color pallet, as @Victorp pointed out in the comments. Here's an example of that:

pal = brewer.pal(9,"BuGn")
wordcloud(words = d$word, 
          freq = d$freq, 
          scale = c(8,.3), 
          random.order = F,
          random.color = F,
          colors = rev(pal))    

which gives you something like this:

Word Cloud

Update: I've written a blog article that covers this topic as well as the n-gram case and scraping data for your word clouds: http://hack-r.com/?p=35

  • Hi could you please demonstrate how to "use" the rev? thanks – Tavi Aug 26 '14 at 12:03
  • @maryam It's there :) You might need to click refresh. – Hack-R Aug 26 '14 at 12:05
  • Yes that's it ! :) – Victorp Aug 26 '14 at 12:06
  • @NerdLife it definitely is there, thanks very much:) – Tavi Aug 26 '14 at 12:06
  • @mayam np! @Victorp thanks for the rev option, great idea – Hack-R Aug 26 '14 at 12:07

Another brilliant solution provided by Victorp in the comments section is to use the following as color argument:

colors=rev(colorRampPalette(brewer.pal(9,"Blues"))(32)[seq(8,32,6)])
  • If this is the best answer feel free to check it as correct for future searchers. – Tyler Rinker Aug 26 '14 at 12:59
  • @TylerRinker I'll have to wait two days :s – Tavi Aug 26 '14 at 14:04
  • @maryam "Blues" are already sequential, what's the extra bit of code at the end for? – Hack-R Aug 26 '14 at 18:56
  • @NerdLife Hi, yes "Blues" are sequential from lighter shades of blue to darker shades of blue. The rev() turns it the other way around, making it dark to light instead of light to dark. Finally the seq() is used to select the colors that are produced; in this case our palette produced 32 sequential colors and we used [seq(8,32,6)] to select from the 8th color in the palette to the 32nd color skipping 6 colors each time – Tavi Aug 26 '14 at 23:55
  • ah, picking colors, I see. Thanks. – Hack-R Aug 27 '14 at 0:30

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