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Why is a variable name followed by an underscore not evaluated correctly during string interpolation in Perl?

my $i = 3;

print "i = $i\n"; # works, prints "i = 3"
print "_i = _$i\n"; # works, prints "_i = _3"
print "i_ = $i_\n"; # FAILS, prints "i_ = "
print "_i_ = _$i_\n"; # sort of works, prints "_i_ = _"
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4 Answers 4

In addition to the other answers, you can use the alternative syntax for specifying variables:

print "i_ = ${i}_\n";

Note the usage of curly brackets: { and } to specify the variable name. Whenever in doubt, you may opt for this syntax.

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$i_ is a valid identifier, so it's trying to print the value of that variable (which you haven't set, so it is undef).

Turn on strict and warnings.

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I noticed your buddhabrot, Mat. Perhaps this would interest you: github.com/buddhabrot/buddhabrot (I couldn't reach you any other way so I had to find an innocent comment somewhere). –  buddhabrot Dec 7 '11 at 16:48

Mat is right. If you really need that underscore immediately after the value use backslash: "$i\_".

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2  
print 'i_ = ' . $i . "_\n"; –  Joel Berger Aug 21 '11 at 11:13
5  
I much prefer ${i} over the backslash, since they do different things in other contexts. –  tchrist Aug 21 '11 at 14:22
1  
@tchrist, can you elaborate? –  Itamar Aug 22 '11 at 15:19
2  
A backslash suppressed interpolation. Curlies around a variable name interpolate the value of that variable. print "${i}_\n" is easier on my eyes and brain, because those two things would do the same thing if unquoted. –  tchrist Aug 22 '11 at 15:21

Always use these:

use strict;
use warnings;
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