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Similar to this, how do I achieve the same in Perl?

I want to convert

C:\Dir1\SubDir1\` to `C:/Dir1/SubDir1/

I am trying to follow examples given here, but when I say something like

my $replacedString= ~s/$dir/"/"; # $dir is C:\Dir1\SubDir1\

I get a compilation error. I've tried escaping the forward slash, but I then get other compiler errors.

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3 Answers 3

up vote 12 down vote accepted

= ~ is very different from =~. The first is assignment and bitwise negation, the second is the binding operator used with regexes.

What you want is this:

$string_to_change =~ s/pattern_to_look_for/string_to_replace_with/g;

Note the use of the global /g option to make changes throughout your string. In your case, looks like you need:

$dir =~ s/\\/\//g;

If you want a more readable regex, you can exchange the delimiter: s#\\#/#g;

If you want to preserve your original string, you can copy it before doing the replacement. You can also use transliteration: tr#\\#/# -- in which case you need no global option.

In short:

$dir =~ tr#\\#/#;

Documentation:

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Thanks! I never knew spaces can matter so much in perl –  user375868 Nov 4 '11 at 20:52
    
@user375868 You are welcome. Usually, perl is very tolerant about whitespace, but not when it is inside an operator. –  TLP Nov 4 '11 at 20:58
    
@user375868, Actually, Perl cares very little for spaces. But you can't use them in the middle of an operator. This is pretty much universal. (e.g. a == b cannot be written as a = = b in C. Let X = 4 cannot be written L et X = 4 in Basic, etc) –  ikegami Nov 5 '11 at 1:32

You're splitting the =~ operator and missing the global modifier. Just assign $dir to $replacedString and then do the substitution.

my $replacedString = $dir;
$replacedString =~ s|\\|/|g;

You can use tr, the translate operator, instead of the s operator too to get simpler code.

my $replacedString = $dir;
$replacedString =~ tr|\\|/|;
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You might actually be looking for File::Spec->canonpath or Path::Class without realizing it.

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