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$i = 5;
print "{$i*10}";

Sometimes I may need to do things like above,but Perl doesn't interpret it the way I want,and I can only do it with another variable.Is there a trick?

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5 Answers 5

up vote 8 down vote accepted
$i = 5;
print "${\($i*10)}";

or

print "@{[$i*10]}";

These interpolate a "variable" that is a dereference of a code block that contains a reference of the appropriate type (scalar in the first instance, array in the second).

Another way would be to have a dummy hash that always returns the key as a value:

use strict;
use warnings;

{
    package Tie::Hash::Dummy;
    use Tie::Hash;
    use parent -norequire => 'Tie::StdHash';
    sub FETCH { $_[1] }
    tie our %Lookup, __PACKAGE__;
}

my $i = 5;
print "$Tie::Hash::Dummy::Lookup{$i*10}";

Another way would be to use the \N{} character name lookup interface, though this will bind variables from a different location, and at compile time (as well as using string eval, potentially a security issue):

my $i;
BEGIN { $i = 5 }
BEGIN { $^H{'charnames'} = sub { eval $_[0] } }
print "\N{$i*10}";

(This might work better if the charnames handler returned an overloaded proxy object that performed the eval upon stringification, but I don't have time to try it.)

Yet another way would be to set a string-constant handler with overload::constant().

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why "${\$i*10}";,say,a reference to scalar ,doesn't work? –  Learning Jul 5 '11 at 7:47
1  
\ has higher precedence, so that takes a reference to $i and multiplies it by 10, then uses the result of that as a symbolic reference. You need to take a reference (and then dereference with ${}) to the entire expression: "${\( EXPR )}". –  ysth Jul 5 '11 at 7:52
    
are you sure \( EXPR ) isn't interpreted as reference an array,but evaluates the same as reference a scalar since it has only one member? –  Learning Jul 5 '11 at 7:58
2  
Yes, I'm sure. () in perl never creates a list or an array of the contents, it just affects precedence. That said, \() is a little special in that it returns a list of references to the elements contained in (), but in your case there's only one. –  ysth Jul 5 '11 at 7:59
2  
The only thing the parentheses do there is cause the lower-precedence , to happen first. Without them, @arr = 1,2,3 becomes (@arr = 1),2,3. () does not create lists. –  ysth Jul 5 '11 at 8:03

I suggest you use "printf":

printf("%s",$i*10);

That'll do.

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4  
With all the other options out there, this one is correct 99.999% of the time. –  ysth Jul 5 '11 at 7:15
$i = 5;
print "${\($i*10)}";

not that I recommend doing that!

update: it is (more or less) equivalent to:

$i = 5;
$j = ($i * 10);
$k = \$j;
print "${$k}";
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Wonderful,how does it work? –  Learning Jul 5 '11 at 6:52
1  
Perl interpolates dereferences as ${EXPR} and @{EXPR} so all you have to do is to write an expression returning a reference to the value you want. –  salva Jul 5 '11 at 6:58

Can you try the following ,

print "{". $i*10. "}";
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I want to do it within quotes. –  Learning Jul 5 '11 at 6:39

Are you trying to access a hash?

If not, then simply use: print "{".($i*10)"}";

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