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I am trying to replace space/tab/or any character before a string match is found.

Given this input:

"1)apple. 2)blue pen. 3)black shirt. 4)red hat."

I want this output:

1)apple._2)blue pen._3)black shirt._4)red hat.

There is a fixed pattern, such as a digit followed by ), and before that I want a replacement.

Code:

$str = "1)apple. 2)blue pen. 3)black shirt. 4)red hat.";
print "before ==> $str \n";
$str =~ s/.(\d+)/_/g;
print "after ==> $str \n"; # o/p: 1)apple._)blue pen._)black shirt._)red hat.

Thanks

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1  
Do you want to replace any character preceding the digit(s) or whatever your fixed pattern is, or do you only want to replace it if it's a space? For example, should 1)apple2)blue pen. become 1)appl_2)blue pen., or 1)apple_2)blue pen., or fail to match the pattern altogether (no change)? –  Adi Inbar Nov 22 '13 at 5:03

2 Answers 2

up vote 1 down vote accepted

change your pattern s/.(\d+)/_/g to s/.(\d+\))/_\1/g. the \1 in the pattern means the value you capture

update:

After turning on warnings, it suggests that it's better written \1 to $1

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2  
In the replacement string, you should should $1, not \1. The latter is a back-reference, for use in pattern definition. If you enable warnings, as you should, you'll see this. –  FMc Nov 22 '13 at 5:01
    
That's great. thanks for quick reply :) –  Roney Nov 22 '13 at 5:01
    
thank you for pointing out that and I have seen the warning. @FMc –  akawhy Nov 22 '13 at 5:05

You need to add the captured match $1 to the replacement side of your substitution operator.

$str =~ s/.(\d+\))/_$1/g;

You could also use a lookahead assertion here.

$str =~ s/.(?=\d+\))/_/g;

If you have a pattern with multiple digits, e.g 9)orange. 10)black shirt. the above will fail. Instead you can use a negated match, which will do the trick.

$str =~ s/[^\d](?=\d+\))/_/g;
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