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Format number as fixed width, with leading zeros
sprintf use without gsub

This has probably been done before but I couldn't find a thread for R.

How would I increment leading zeroes in R?

For example have a vector called x with elements: 0001, 0002, 0003....9999

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marked as duplicate by DWin, Tyler Rinker, Chase, mnel, MvG Oct 24 '12 at 6:34

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

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Looks like it has been asked before: stackoverflow.com/questions/5812493/… and stackoverflow.com/questions/12379767/sprintf-use-without-gsub . Both found with search: [r] leading zeros –  BondedDust Oct 24 '12 at 4:52
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Just found a third: stackoverflow.com/questions/8266915/… .... yeah, I know... get a life. –  BondedDust Oct 24 '12 at 4:58
    
whoops i should prolly delete this then. thanks! –  user1103294 Oct 24 '12 at 4:59
    
I'm not sure you can anymore. We can close it, though. –  BondedDust Oct 24 '12 at 5:03

2 Answers 2

up vote 1 down vote accepted

Use sprintf:

sprintf("%04s", as.character(1:20))
[1] "0001" "0002" "0003" "0004" "0005" "0006" "0007" "0008" "0009" "0010" "0011" "0012" "0013" "0014" "0015" "0016"
[17] "0017" "0018" "0019" "0020"

On Windows I am able to locate an Rhelp posting that says you can get success with

head( sprintf("%04d", 1:999)  )
[1] "0001" "0002" "0003" "0004" "0005" "0006"
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Whoops, I think I completely misinterpreted this question. –  Blue Magister Oct 24 '12 at 4:38
    
It's a question I have answered before on Rhelp more than once. I have to look up my earlier answer every time. I keep thinking it should be "%0000s" –  BondedDust Oct 24 '12 at 4:40
    
hi DWin, I tried your answer but it's not working for me code> nums = sprintf("%04s", as.character(1:9999)); head(nums) [1] " 1" " 2" " 3" " 4" " 5" " 6"code There are no leading zeros, just empty spaces –  user1103294 Oct 24 '12 at 5:06
    
Ah, then you must be on a different OS (than me on a Mac). The sprintf function calls system facilities. I get the predicted results: tail( sprintf("%04s", as.character(1:999)) ) [1] "0994" "0995" "0996" "0997" "0998" "0999" –  BondedDust Oct 24 '12 at 5:13

If the elements are all 4 digits, then regex could do it:

gsub("0(\\d{3})","1\\1",x)

More generally:

gsub("^0(\\d*)$","1\\1",x)
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