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I know it is preferred if variable names do not have spaces in them. I have a situation where I need publication-quality charts, so axes and legends need to have properly formatted labels, ie with spaces. So, for example, in development I might have variables called "Pct.On.OAC" and Age.Group, but in my final plot I need "% on OAC" and "Age Group" to appear:

'data.frame':   22 obs. of  3 variables:
 $ % on OAC           : Factor w/ 11 levels "0","0.1-9.9",..: 1 2 3 4 5 6 7 8 9 10 ...
 $ Age Group          : Factor w/ 2 levels "Aged 80 and over",..: 1 1 1 1 1 1 1 1 1 1 ...
 $ Number of Practices: int  47 5 33 98 287 543 516 222 67 14 ...

But when I try to plot these:

ggplot(dt.m, aes(x=`% on OAC`,y=`Number of Practices`, fill=`Age Group`)) +

no problem with that. But when I add a facet:

ggplot(dt.m, aes(x=`% on OAC`,y=`Number of Practices`, fill=`Age Group`)) +
    geom_bar() +
    facet_grid(`Age Group`~ .) 

I get Error in[.data.frame(base, names(rows)) : undefined columns selected

If I change Age Group to Age.Group then it works fine, but as I said, I don't want the dot to appear in the title legend.

So my questions are:

  1. Is there a workaround for the problem with the facet ?
  2. Is there a better general approach to dealing with the problem of spaces (and other characters) in variable names when I want the final plot to include them ? I suppose I can manually overide them, but that seems like a lot of faffing around.
share|improve this question
Use scale_fill(name = "Age group") or similar. – mnel Oct 5 '12 at 10:51
@mnel sorry, I didn't follow you - how does this solve the problem with the facet_grid ? I use scale_fill(name = "Age Group") instead ? – Robert Long Oct 5 '12 at 11:03

2 Answers 2

up vote 7 down vote accepted

This is a "bug" in the package ggplot2 that comes from the fact that the function in the internal ggplot2 function quoted_df converts the names to syntactically valid names. These syntactically valid names cannot be found in the original dataframe, hence the error.

To remind you :

syntactically valid names consists of letters, numbers and the dot or underline characters, and start with a letter or the dot (but the dot cannot be followed by a number)

There's a reason for that. There's also a reason why ggplot allows you to set labels using labs, eg using the following dummy dataset with valid names:

X <-data.frame(
  PonOAC = rep(c('a','b','c','d'),2),
  AgeGroup = rep(c("over 80",'under 80'),each=4),
  NumberofPractices = rpois(8,70)

You can use labs at the end to make this code work

ggplot(X, aes(x=PonOAC,y=NumberofPractices, fill=AgeGroup)) +
  geom_bar() +
  facet_grid(AgeGroup~ .) + 
  labs(x="% on OAC", y="Number of Practices",fill = "Age Group")

To produce

enter image description here

share|improve this answer
PS : As @DirkEddelbuettel points out, afaik the function uses the function make.names() internally to "correct" those names (i.e. create valid identifiers). – Joris Meys Oct 5 '12 at 11:49

You asked "Is there a better general approach to dealing with the problem of spaces (and other characters) in variable names" and yes there are a few:

  • Just don't use them as things will break as you experienced here
  • Use the make.names() function to create safe names; this is used by R too to create identifiers (eg by using underscores for spaces etc)
  • If you must, protect the unsafe identifiers with backticks.

Example for the last two points:

R> myvec <- list("foo"=3.14, "some bar"=2.22)
R> myvec$'some bar' * 2
[1] 4.44
R> make.names(names(myvec))
[1] "foo"      ""
share|improve this answer
yes, but in this case (because ggplot does some extra evaluation), protecting with backticks doesn't work, so we're back to your point #1 ... – Ben Bolker Oct 5 '12 at 12:34
Sure, as one cannot (easily) alter all other packages. There is a reason I ranked them the way I did. Backticks is the last resort. – Dirk Eddelbuettel Oct 5 '12 at 13:13

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