Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm hitting a snag when I try to use the %+% operator to redo an existing plot with new data. My code looks like this:

df <- data.frame(ending=now()+hours(0:5), actual=runif(6), pred=runif(6))
p <- ggplot(df, aes(x=ending)) +
  geom_line(aes(y=actual, color='Actual')) +
  geom_line(aes(y=pred, color='Predicted')) +
  ylab('Faults') +
  scale_color_manual('Values', c("Predicted"="red", "Actual"="black"))
p

That works fine. But when I try to substitute a new df, I hit errors:

p1 %+% df
Error in bl1$get_call : $ operator is invalid for atomic vectors

Any thoughts?

share|improve this question

2 Answers 2

Of course, immediately after I post, I find the answer - it's not ggplot2's %+% operator. Another namespace collision. The mboost package also provides a %+% operator.

I "solved" this by doing detach(package:mboost). I could also solve it by doing something like

replot <- get('%+%', 'package:ggplot2')
replot(p, df)

A solution to avoiding the namespace collision would be best, but I don't know how to do that.

share|improve this answer
1  
Best I can come up with is ggplot2::`%+%`(p, df), but I don't know how to combine specifying a infix binary operator and a namespace qualification. –  Brian Diggs Mar 9 '12 at 23:55
    
Aha - I'd tried `ggplot2::%+%` but that wasn't working. –  Ken Williams Mar 10 '12 at 3:18
    
Can infix binary operators be methods? That might help solve the namespace collision, maybe, possibly. –  Ken Williams Mar 10 '12 at 3:19
    
If you don't use mboost's %+%, you can add `%+%` <- ggplot2::`%+%` to your RProfile to permanently alias it. –  yoplait Jun 1 at 21:20

You can reassign infix operators to infix operators, but I don't think you can then turn them back into regular functions without special effort. Try this instead:

 `%new+%` <- ggplot2::`%+%`

.... and use it as p %+% df, rather than as %+%(a,b)

share|improve this answer

Your Answer

 
discard

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.