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I have some substring [ aa bb cc ] in a line, like $line = "1 2 a b [ aa bb cc ] c d [ bb cc ] 3 4". And I want to trim all the spaces in these substrings. The following code does not work.

while($line =~ /\[(.*?)\]g/)
{
  $1 =~ s/\s+//g;
}

Can someone help please

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3 Answers

up vote 7 down vote accepted
s{\[(.*?)\]}{
   my $s = $1;
   $s =~ s/\s+//g;
   $s
}eg;
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Thanks a lot. However, I got some error with this code:Backslash found where operator expected at ../convtag.pl line 11, near "$s =~ s/\" (Might be a runaway multi-line // string starting on line 9) (Missing operator before \?) Global symbol "$s" requires explicit package name at ../convtag.pl line 9. Global symbol "$s" requires explicit package name at ../convtag.pl line 9. syntax error at ../convtag.pl line 11, near "$s =~ s/\" Substitution pattern not terminated at ../convtag.pl line 11. –  user2309694 Apr 23 '13 at 4:48
    
@user2309694, Fixed. –  ikegami Apr 23 '13 at 4:49
    
@ikegami interesting substitution notation –  gaussblurinc Apr 23 '13 at 7:46
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Another way similar to your attempt:

while($line =~ s/\[([^\]\s]*)\s+/[$1/g) {}

and you don't have to escape the r-square bracket, but it helps vim.

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This also works. Thank you. –  user2309694 Apr 23 '13 at 7:15
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Your method fails because the match variable $1 is read-only. You can use non-destructive substitution (introduced in Perl 5.16) to avoid that problem:

use warnings;
use strict;

my $line = "[foo bar] [   baz    ]  sproing";
while($line =~ /\[(.*?)\]/g)
{
    my $result = $1 =~ s/\s+//gr;
    print "|$result|\n";
}
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