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maybe this is a stupid question but :
i run perl 5.8.8 and i need to replace any underscore preceded by a number, with "0".

running :

 $var =~s /(\d)_/$10/g; 
obviously does not work as $10 is interpreted as... well... $10, not "$1 followed by 0"

moreover, as runing perl5.8, i can't do

$var=~s/(?<n1>\d)\_/$+{n1}0/g;

any idea ?
thanks in advance

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4 Answers 4

up vote 11 down vote accepted

Just like in various Unix shells, you can enclose the variable name in braces for disambiguation.

$var =~s /(\d)_/${1}0/g;

Or you can use a look-behind to prevent the digit from being part of the match:

$var =~s /(?<=\d)_/0/g; 
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this is it. Thank you very mutch ! –  benzebuth Aug 25 '10 at 13:29

This would also be a good place for a zero width look-behind assertion:

$var =~ s/(?<=\d)_/0/g;

It looks for a digit without actually slurping the digit into the matched text.

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this works too. Thanks. –  benzebuth Aug 25 '10 at 13:34

$var =~s/(\d)_/${1}0/g;

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This is clearly against the intent of OP. –  jpalecek Aug 25 '10 at 13:29
    
sorry, but i said i need to substitue the underscore, which imply that i keep the number before it –  benzebuth Aug 25 '10 at 13:31

Another possibilities are (not sure if applicable to perl 5.8.8)

s/\d\K_/0/
s/(?<=\d)_/0/
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