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Normally if you wish to change a variable with regex you do this:

$string =~ s/matchCase/changeCase/; 

But is there a way to simply do the replace inline without setting it back to the variable?

I wish to use it in something like this:

my $name="jason";
print "Your name without spaces is: " $name => (/\s+/''/g);

Something like that, kind of like the preg_replace function in PHP.

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1  
The interface of the substitution operator is not a good design. (I've already said something like this once today.) There's talk on p5p to add a flag to it so it returns the changed string. –  daxim Jul 23 '10 at 19:49

2 Answers 2

up vote 11 down vote accepted

Revised for Perl 5.14.

Since 5.14, with the /r flag to return the substitution, you can do this:

print "Your name without spaces is: [", do { $name =~ s/\s+//gr; }
    , "]\n";

You can use map and a lexical variable.

my $name=" jason ";

print "Your name without spaces is: ["
    , ( map { my $a = $_; $a =~ s/\s+//g; $a } ( $name ))
    , "]\n";

Now, you have to use a lexical because $_ will alias and thus modify your variable.

The output is

Your name without spaces is: [jason]
# but: $name still ' jason '

Admittedly do will work just as well (and perhaps better)

print "Your name without spaces is: ["
    , do { my ( $a = $name ) =~ s/\s+//g; $a }
    , "]\n";

But the lexical copying is still there. The assignment within in the my is an abbreviation that some people prefer (not me).

For this idiom, I have developed an operator I call filter:

sub filter (&@) { 
    my $block = shift;
    if ( wantarray ) { 
        return map { &$block; $_ } @_ ? @_ : $_;
    }
    else { 
       local $_ = shift || $_;
       $block->( $_ );
       return $_;
    }
}

And you call it like so:

print "Your name without spaces is: [", ( filter { s/\s+//g } $name )
    , "]\n";
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3  
Or you could use a lexical variable without using map: print "Your name without spaces is: [", do{my $a=$name; $a=~s/\s+//g; $a}, "]\n" –  mob Jul 23 '10 at 19:08
1  
@mobrule:I was adding that as you typed. :D –  Axeman Jul 23 '10 at 19:17
    
Accepted this one since it has more explanation. –  Razor Storm Jul 23 '10 at 20:12
print "Your name without spaces is: @{[map { s/\s+//g; $_ } $name]}\n";
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