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i have a scenario, i need to replace the nth sub-string in a string.

s/sub-string/new-string/g; will replace all the sub strings. but i need to do for a particular occurrence say (3rd Occurrence).

please help me with this

Thanks

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6 Answers 6

up vote 0 down vote accepted

This question might be interesting: Perl regex replace count

You might do something like this:

use strict;
use warnings;

my $count = 3;
my $str = "blublublublublu";
$str =~ s/(lu)/--$count == 0 ? "LA":$1/ge;
print $str;
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For replacing the nth occurenct of a string using sed, you can use this command.
sed 's/find_string/replace_string/n'
For replacing the substring, we need to know what you want to replace.Give an example.

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example: string "bananas came from bananas tree", in this i want to change second "bananas" to "banana" –  MuraliKrishna Jul 24 '11 at 4:31
    
sed 's/bananas/banana/2' inputfile –  cppcoder Jul 24 '11 at 9:39
    
@cppcoder Do you know if there is a way to specify n, starting from the end? (e.g. replace the first sub-string from the end of the string) –  user815423426 May 28 '13 at 13:35

Try this:

s/(sub-string{2,2})sub-string/$1new-string/

adjust 2 according to your needs (it's your 'n'- 1). Note that there may no separators exist between those substrings. e.g. 'abcabcabc' would work but 'abcdefabcabc' won't

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You can also do like this

my $i=0;
s/(old-string)/++$i%3 ? $1 : "new_string"/ge;
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1  
++$i ? . . . . –  socket puppet Jul 22 '11 at 7:59
    
@socket-puppet: thanks, I missed it. Obviously it's ++ –  Dallaylaen Jul 22 '11 at 10:11

Try this:

 s/((old-string).*?){2}\2/\1\1new-string/
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Hey John, thanks for ur input, what \2 and \1 does here –  MuraliKrishna Jul 22 '11 at 6:13
    
@user857223: \1 captures outer () and \2 captures the old-string. read captures from left to right like:(capture-one(capture-two)) –  Prince John Wesley Jul 22 '11 at 6:28
    
$_ = "Muralikrishna muralikrishna muralikrishna"; s/((murali).*?){2}\2/\1"murale"/g; print "$_\n"; here i am expecting "Muralikrishna muralikrishna muralekrishna" –  MuraliKrishna Jul 25 '11 at 4:16
    
@user857223: (murali) should be ([mM]urali) or. try /gi –  Prince John Wesley Jul 25 '11 at 4:23
    
John, $_ = "Muralikrishna muralikrishna muralikrishna"; s/(([Mm]urali).*?){2,}\2/\1murale/g; print "$_\n"; Output: muralikrishna muralekrishna But i like to get "Muralikrishna muralikrishna muralekrishna" –  MuraliKrishna Jul 25 '11 at 5:34

I'm really a believer that there's no point building extra complexity into a regular expression unless it's truly necessary to do so (or unless you're just having fun). In code I actually planned to use I would keep it simple, like this:

my $string = "one two three four five";

$string =~ m/\w+\s*/g for 1 .. 2;
substr( $string,pos($string) ) =~ s/(\w+)/3/;
print "$string\n";

Using the m//g in scalar context causes it to match one time per iteration of the for loop. On each iteration pos() keeps track of the end of the most recent submatch on $string. Once you've gone through 'n' iterations (two in this case), you can plug pos() into substr(). Use substr($string... as an lvalue. It will constrain the regexp match to begin at whatever position you tel it in the second arg. We're plugging pos in there, which constrains it to take its next match wherever the last match left off.

This approach eliminates an explicit counter (though the for loop is essentially the same thing without naming a counter variable). This approach also scales better than a s//condition ? result : result/eg approach because it will stop after that third match is accomplished, rather than continuing to try to match until the end of a potentially large string is reached. In other words, the s///eg approach doesn't constrain the matching, it only deals conditionally with the outcome of an arbitrarily large number of successful matches.

In a previous question on the same topic I once embedded a counter in the left side of the s/// operator. While it worked for that specific case, it's not an ideal solution because it's prone to being thrown off by backtracking. That's another case where keeping it simple would have been the best approach. I mention it here so that you can avoid temptation to try such a trick (unless you want to have fun with backtracking).

The approach I've posted here, I believe is very clear; you look at it and know what's happening: match twice, keep track of last match position, now match a third time with substitution. You can have clever, you can have efficient, and you can have clear. But sometimes you can't have all three. Here you get efficient and clear.

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