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Is there a built-in function to trim leading and trailing whitespace such that trim(" hello world ") eq "hello world"?

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3  
FYI: string equality in Perl is tested by the operator eq. – A. Rex Jan 4 '11 at 20:16
4  
A bit of clarification on all the asnwers you got: s/^\s+|\s+$//g; vs s/^\s*//; s/\s*$//; The latter is the (ever so slightly) more idiomatic way to do this, as starting the regex engine over is actually faster than the alternation, in this case. You can read more about this on Jeffrey Friedl's Mastering Regular Expressions. (Unless this was fixed in some newer version of Perl, in which case someone please correct me!) – Hugmeir Jan 4 '11 at 20:30
2  
Coming from a Java and .NET background, I'm almost shocked this isn't built into the language! THANKS ALL! – Landon Kuhn Jan 4 '11 at 20:50
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@landon9720, it somewhat is: Scalar::Util has trim, and is core since 5.7.3 - That's 2002! – Hugmeir Jan 4 '11 at 20:52
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Hugmeir, this is wrong, see the answer of Ether. – daxim Jan 5 '11 at 7:27

10 Answers 10

This is available in String::Util with the trim method:

Editor's note: String::Util is not a core module, but you can install it from CPAN with [sudo] cpan String::Util.

use String::Util 'trim';
my $str = "  hello  ";
$str = trim($str);
print "string is now: '$str'\n";

prints:

string is now 'hello'

However it is easy enough to do yourself:

$str =~ s/^\s+//;
$str =~ s/\s+$//;
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@mklement0 nor will it ever be. But this is not relevant, since everyone should be using modules from the CPAN. – Ether Jun 9 '15 at 21:12
    
why should everyone use modules from CPAN? It makes consistency difficult when using perl from your linux distribution (debian, redhat, ubuntu) combined with manually installed CPAN modules. It is much better if something can be done in perl using modules which are available as packages in linux distribution – Marki555 Jan 11 at 10:01
    
@Marki555 modules available as packages in your linux distro are from CPAN -- they've just been repackaged. You can generally request a certain module to be packaged if it hasn't been done so already (the debian folks are particularly responsive and helpful). – Ether Jan 12 at 18:57
    
I know they are also from CPAN... Yes, generally I can request a new pkg for debian, but it won't help me for my installed debian stable release... that's why I prefer packages modules, but use directly CPAN if really needed. – Marki555 Jan 13 at 8:20

Here's one approach using a regular expression:

$string =~ s/^\s+|\s+$//g ;     # remove both leading and trailing whitespace

Perl 6 will include a trim function:

$string .= trim;

Source: Wikipedia

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2  
I look this up about once a month. Too bad I can't upvote it each time. – kyle Oct 29 '14 at 19:31

There's no built-in trim function, but you can easily implement your own using a simple substitution:

sub trim {
    (my $s = $_[0]) =~ s/^\s+|\s+$//g;
    return $s;        
}

or using non-destructive substitution in Perl 5.14 and later:

sub trim {
   return $_[0] =~ s/^\s+|\s+$//rg;
}
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According to this perlmonk's thread:

$string =~ s/^\s+|\s+$//g;
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Apply: s/^\s*//; s/\s+$//; to it. Or use s/^\s+|\s+$//g if you want to be fancy.

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I also use a positive lookahead to trim repeating spaces inside the text:

s/^\s+|\s(?=\s)|\s+$//g
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For those that are using Text::CSV I found this thread and then noticed within the CSV module that you could strip it out via switch:

$csv = Text::CSV->new({allow_whitespace => 1});

The logic is backwards in that if you want to strip then you set to 1. Go figure. Hope this helps anyone.

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One option is Text::Trim:

use Text::Trim;
print trim("  example  ");
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No, but you can use the s/// substitution operator and the \s whitespace assertion to get the same result.

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That would remove spaces between words, not just at either end of the string. – DarenW May 1 '12 at 18:06
    
@DarenW: depends how you use it. – Philip Potter May 2 '12 at 11:16

protected by Kermit Feb 26 '14 at 16:14

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