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I have vector like this:

x <- c("20(0.23)", "15(0.2)", "16(0.09)")

and I don't want to mess with the numbers on the outside of the parenthesis but want to remove the leading zero on the numbers inside and make everything have 2 digits. The output will look like:

"20(.23)", "15(.20)", "16(.09)"

Useful information:

I can remove leading zero and retain 2 digits using the function below taken from: LINK

numformat <- function(val) { sub("^(-?)0.", "\\1.", sprintf("%.2f", val)) }

numformat(c(0.2, 0.26))
#[1] ".20" ".26"

I know gsub can be used but I don't know how. I'll provide a strsplit answer but that's hackish at best.

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4 Answers 4

up vote 6 down vote accepted

The gsubfn package allows you to replace anything matched by a regex with a function applied to the match. So we could use what you have with your numformat function

library(gsubfn)
# Note that I added as.numeric in because what will be passed in
# is a character string
numformat <- function(val){sub("^(-?)0.", "\\1.", sprintf("%.2f", as.numeric(val)))}
gsubfn("0\\.\\d+", numformat, x)
#[1] "20(.23)" "15(.20)" "16(.09)"
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Wow that was pretty nicely done. This just convinced me to learn the gsubfn package. –  Tyler Rinker Oct 13 '12 at 22:06
    
To be honest this is the first time I've ever used gsubfn so it could probably be done even cleaner than this. But I vaguely recalled that gsubfn lets you replace stuff with functions acting on that stuff so this seemed like the perfect reason to try it out. –  Dason Oct 13 '12 at 22:07
pad.fix<-function(x){
y<-gsub('\\.(\\d)\\)','\\.\\10\\)',x)
gsub('0\\.','\\.',y)
}

the first gsub adds a trailing zero if needed the second gsub removes the leading zero.

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That is yet another of these Tyler questions that seem to be complicated just for complications sake :)

So here you go:

R> x <- c("20(0.23)", "15(0.2)", "16(0.09)")
R> sapply(strsplit(gsub("^(\\d+)\\((.*)\\)$", "\\1 \\2", x), " "), 
+         function(x) sprintf("%2d(.%02d)", 
+                              as.numeric(x[1]), 
+                              as.numeric(x[2])*100))
[1] "20(.23)" "15(.20)" "16(.09)"
R> 

We do a few things here:

  1. The gsub() picks off the two two numbers: first the one before the parens, then the one inside the parens. [With hindsight, should have picked after the decimal, see below.]
  2. This prints them out just with whitespace, e.g. "20 0.23" for the first.
  3. We then use a standard strsplit() on this.
  4. We then use sapply to process the list we get from strsplit
  5. We print the first number as a two-digit int.
  6. The second one is more tricky -- the (s)printf() family cannot suppress a leading zero so we print the decimal, and the print two digits of an integer -- and convert the second number accordingly.

It is all concise and in one line, but it would be clearer broken out.

Edit: I don;t often provide the fastest solutions, but when I do, at least I can gloat:

R> dason <- function(x) { numformat <- function(val){sub("^(-?)0.", "\\1.", sprintf("%.2f", as.numeric(val)))}; gsubfn("0\\.\\d+", numformat, x) }
R> dirk <- function(x) { sapply(strsplit(gsub("^(\\d+)\\((.*)\\)$", "\\1 \\2", x), " "), function(x) sprintf("%2d(.%02d)", as.numeric(x[1]), as.numeric(x[2])*100)) }
R> 
R> dason(x)
[1] "20(.23)" "15(.20)" "16(.09)"
R> dirk(x)
[1] "20(.23)" "15(.20)" "16(.09)"
R> 
R> res <- benchmark(dason(x), dirk(x), replications=1000, order="relative")
R> res
      test replications elapsed relative user.self sys.self user.child sys.child
2  dirk(x)         1000   0.133    1.000     0.132    0.000          0         0
1 dason(x)         1000   2.026   15.233     1.960    0.064          0         0
R> 

So that's about 15 rimes faster. Not that it matters in this context, but speed never hurt anyone in the long run.

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Oh Dirk you love complication, it makes life fun :) +1 –  Tyler Rinker Oct 13 '12 at 22:03
    
Sure thing, especially when we can solve issues old-school with just base R and without any of these newfangled packages. :) –  Dirk Eddelbuettel Oct 13 '12 at 22:07
1  
My solution runs circles around Dason's. Edit coming. –  Dirk Eddelbuettel Oct 13 '12 at 22:12

Non gsub answer that's ugly at best.

x <- c("20(0.23)", "15(0.2)", "16(0.09)")

numformat <- function(val) { sub("^(-?)0.", "\\1.", sprintf("%.2f", val)) }
z <- do.call(rbind, strsplit(gsub("\\)", "", x), "\\("))
z[, 2] <- numformat(as.numeric(z[, 2]))
paste0(z[, 1], "(", z[, 2], ")")
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