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I have used the following ggplot command:

ggplot(survey,aes(x=age))+stat_bin(aes(n=nrow(h3),y=..count../n), binwidth=10)
  +scale_y_continuous(formatter = "percent", breaks=c(0, 0.1, 0.2)) 
  + facet_grid(hospital ~ .) 
  + opts(panel.background = theme_blank()) 

to produce

alt text

I'd like to change the facet labels, however, to something shorter (like Hosp 1, Hosp 2...) because they are too long now and look cramped (increasing the height of the graph is not an option, it would take too much space in the document). I looked at the facet_grid help page but cannot figure out how.

Thanks in advance for any pointers.

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3 Answers 3

up vote 13 down vote accepted

Change the underlying factor level names with something like:

# Using the Iris data
> i <- iris
> levels(i$Species)
[1] "setosa"     "versicolor" "virginica" 
> levels(i$Species) <- c("S", "Ve", "Vi")
> ggplot(i, aes(Petal.Length)) + stat_bin() + facet_grid(Species ~ .)
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4  
Great, it works well; even though I would have preferred a solution that doesn't change the underlying data, it solved my problem so I could move with my work. Thank you. –  wishihadabettername Aug 13 '10 at 2:23
1  
@wishihadabettername: To avoid changing underlying data, you can use: ggplot(transform(iris, Species = c("S", "Ve", "Vi")[as.numeric(Species)]), aes(Petal.Length)) + stat_bin() + facet_grid(Species ~ .) –  Arnaud Amzallag May 12 at 14:58

Note that this solution will not work nicely in case ggplot will show less factors than your variable actually contains (which could happen if you had been for example subsetting):

 library(ggplot2)
 labeli <- function(variable, value){
  names_li <- list("versicolor"="versi", "virginica"="virg")
  return(names_li[value])
 }

 dat <- subset(iris,Species!="setosa")
 ggplot(dat, aes(Petal.Length)) + stat_bin() + facet_grid(Species ~ ., labeller=labeli)

A simple solution (besides adding all unused factors in names_li, which can be tedious) is to drop the unused factors with droplevels(), either in the original dataset, or in the labbeler function, see:

labeli2 <- function(variable, value){
  value <- droplevels(value)
  names_li <- list("versicolor"="versi", "virginica"="virg")
  return(names_li[value])
}

dat <- subset(iris,Species!="setosa")
ggplot(dat, aes(Petal.Length)) + stat_bin() + facet_grid(Species ~ ., labeller=labeli2)
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Here is a better solution, that avoids editing your data:

Say your plot is facetted by the group part of your dataframe, which has levels control, test1, test2, then create a list named by those values:

hospital_names <- list(
  'Hospital#1'="Some Hospital",
  'Hospital#2'="Another Hospital",
  'Hospital#3'="Hospital Number 3",
  'Hospital#4'="The Other Hospital"
)

Then create a 'labeller' function, and push it into your facet_grid call:

hospital_labeller <- function(variable,value){
  return(hospital_names[value])
}

ggplot(survey,aes(x=age)) + stat_bin(aes(n=nrow(h3),y=..count../n), binwidth=10)
 + facet_grid(hospital ~ ., labeller=hospital_labeller)
 ...

This uses the levels of the data frame to index the hospital_names list, returning the list values (the correct names).


Please note that this only works if you only have one faceting variable. If you have two facets, then your labeller function needs to return a different name vector for each facet. You can do this with something like :

plot_labeller <- function(variable,value){
  if (variable=='facet1') {
    return(facet1_names[value])
  } else {
    return(facet2_names[value])
  }
}

Where facet1_names and facet2_names are pre-defined lists of names indexed by the facet index names ('Hostpital#1', etc.).


Answer adapted from how to change strip.text labels in ggplot with facet and margin=TRUE

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This is the working one tbh –  user1685185 Feb 9 at 2:22
2  
Nice, but will not work with facet_wrap, whereas @Vince solution will work with facet_wrap too. –  Arnaud Amzallag May 12 at 14:01
    
@ArnaudAmzallag: Correct, though if someone feels like donating some time, it could in the future. –  naught101 May 13 at 0:52

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