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I want to replace all instances of a number in a string, but only if that number is the in the nth column where the columns are space-delimited.

This is what I had so far:

$_ =~ s/\s+([^\s]+\s+){$numcols}$i(.*)\n/$rep/;

Basically, there will be a few spaces, and then there will be: (non-spaces (column) followed by spaces) for $numcols times. Then, there will be $i, where $i is the number I want to replace, followed by some characters I don't care about and a newline. However, I don't want to replace ALL OF THAT with $rep, but only $i. How do I do that?

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I think it might be easier to split on space and replace the nth element of the resulting array. –  Jerry Sep 21 '13 at 19:43
Problem is I have to reprint it, and I don't know beforehand how many spaces I need to add in between each column –  user2258552 Sep 21 '13 at 19:52
Please note that you don't need to specify $_ =~. That is the default. It's why $_ exists. $_ is the "it" variable. Just do s/.../..../. –  Andy Lester Sep 21 '13 at 20:31

1 Answer 1

up vote 1 down vote accepted

Something like this:

$_ =~ s/^(\s+(?:[^\s]+\s+){$numcols})$i/$1$rep/;

We're catching everything before $i as one group (with a non-capturing group denoted by ?: in the middle of it). We're keeping all that, replacing just $i, and leaving the rest of the string alone.

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Excellent, thanks. However, I have realized that I actually was doing something wrong. I need to replace EVERY instance in columns 0 through numcols of $i, with rep, whereas before I was just replacing the numcolsth instance. Also, just wondering, why does this work since ?: the noncapturing group does not act upon the first \s+? –  user2258552 Sep 21 '13 at 20:01

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