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my $cmd = 'this is a "testin$g" ok';
print Dumper($cmd);

$VAR1 = 'this is a "testin$g" ok';

my $cmd = 'this is a "testin$g" ok';
$cmd =~ s/\$/\\\$/;
print Dumper($cmd);

$VAR1 = 'this is a "testin\\$g" ok';

I am trying to end up with a string that looks like this: 'this is a "testin\$g" ok'. A single \ in front of the $. But even though I replace the $ with \$ it ends up with two instead.

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3 Answers 3

up vote 6 down vote accepted

Your regex and string are both correct. Data::Dumper escapes the characters itself.

For printing a simple string just use

print $cmd."\n";

And you'll see it's ok.

Also, try this to see how Dumper escapes the characters

print Dumper('this is a "testin\$g" ok');
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thanks, didn't realize that Dumper was escaping it. –  Takkun Oct 30 '13 at 16:30

Your substitution is correct. If you executed the following, you'd see that $cmd contains but a single backslash.

print("$cmd\n");    # this is a "testin\$g" ok

Data::Dumper prints a string literal that, when executed, would create the string in the structure.

$VAR1 = 'this is a "testin\\$g" ok';

indicates the variable dumped contains

this is a "testin\$g" ok

because

this is a "testin\$g" ok

gets assigned to $VAR1 when you execute

$VAR1 = 'this is a "testin\\$g" ok';
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Try this:

my $cmd = "'this is a " . "\"testin" . chr(92) . "\$" . "g\"" . " ok'";

The . character (period) is the concatenation operator which joins strings together.

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1) That produces the same string the OP has. 2) You could have tried it yourself. 3) That doesn't transform an existing string. –  ikegami Oct 30 '13 at 15:55

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