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I have a column of numbers from 1:1000. I want to append the label "s" to the front of each number so that the total number of characters in each cell remains the same. For instance, "1" would become "s0001", "15" would become "s0015", "620" would become "s0620", and "1000" would become "s1000".

I have tried to accomplish this using nested if else statements, but I keep getting the error that the condition has length > 1 and only the first element will be used.

Here is an example data set and the code I'm using:

df=data.frame(code=seq(1:1000))
df$code=
  if (df$code < 10) { df$code=paste("s000",df$code,sep="") } else
    if (100 > df$code & df$code >= 10) { df$code=paste("s00",df$code,sep=="") } else
      if (1000 > df$code & df$code >= 100) { df$code=paste("s0",df$code,sep="") } else
      { df$code=paste("s",df$code,sep="") }

I suspect there is an easier way to do this without using if else. Any thoughts?

Thanks!


Solution

Thanks to Joran! If x is non-continuous integers:

d=data.frame(x=sample(1:1000,500))
d$nc=nchar(d$x)
ddply(d,.(nc),transform,lab = paste("s",paste(rep("0",4-unique(nc)),collapse = ""),x,sep = ""))
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2 Answers 2

up vote 5 down vote accepted

how bout sprintf?

> sprintf('s%04d', c(1,10,100,1000))
[1] "s0001" "s0010" "s0100" "s1000"
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+1 Much, much better. –  joran Apr 10 '12 at 20:10
    
@joran I only know cause I had to ask when doing the same thing long ago! –  Justin Apr 10 '12 at 20:11
    
Woah, nice! Thanks Justin! –  jslefche Apr 11 '12 at 1:29

I am 100% certain there's a better way to do this, and I'm a little embarrassed to resort to ddply, but this works at least:

d <- data.frame(x = 1:1000,nc = nchar(1:1000))
ddply(d,.(nc),transform,lab = paste("s",paste(rep("0",4-unique(nc)),collapse = ""),x,sep = ""))

There we go, this is much better, I think:

paste("s",sapply(4-nchar(1:1000),function(i) paste(rep("0",i),collapse = "")),1:1000,sep = "")
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Sweet. I have a data frame where x is not continuous integers from 1:1000, so ddply to the rescue! –  jslefche Apr 10 '12 at 18:25
    
@jslefche Unless I've misunderstood you, I think my second solution should work as well. You want something like max(nchar(x)) instead of the hard coded 4. (And of course replace all the 1:1000 with your vector.) –  joran Apr 10 '12 at 18:28

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