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I'm new in perl and have a little problem:

part of perl code:

print "${data_dir}\n";
#converting directory path to unix format (replacing all backslashes with slashes)
$data_dir = ~s/\\/\//g;
print "${data_dir}\n";

output:

C:/dev/../data
4294967295

Why results are different? I guess that the problem in $data_dir variable, because this works for other string, but what can be the problem?

P.S. $data_dir I'm getting from other module, and don't know how it is constructed.

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you may find it clearer to use another character to define the regex so that you don't need to escape the forward-slash, e.g. $data_dir =~ s{\\}{/}g; - use the same principle as q, qw, qq etc and pick a (sensible) character that doesn't appear within the string –  plusplus May 5 '11 at 13:30
    
@Axeman Why did you edit title of question? Now I can't understand it :))) And thing that people who have such problem will not search in google phrase "How do I get a number from a substitution on a non-numeric string?" –  Mihran Hovsepyan May 5 '11 at 15:15
    
quite simply, your question was wrong. The substitution wasn't "spoiling" the variable, the assignment you mistakenly typed was. Plus, my phrasing is, I dare say, a little more symptomatic than the conclusion you jumped to. –  Axeman May 5 '11 at 15:23
    
they would probably never search for your question either, unless they thought a variable was "spoiled". 1) You (thought you) were doing a substitution operation, the result was a numeric string when you started out with a non-numeric string. These elements are more likely to be searched on than 's with g' -- when the global flag had nothing to do with it, and you would have gotten a similar result without the global flag. I tried to capture the "anomaly" without prejudicial words. So I kept it to input, operation, and output. –  Axeman May 5 '11 at 15:28

4 Answers 4

up vote 11 down vote accepted

You have a space between the = and the ~. They should be together =~.

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

What you were doing is setting $data_dir equal to the complement (i.e. the ~ operator) of s/\\/\//g which equals 4294967295.

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1  
Thank you! :)) Very stupid question. –  Mihran Hovsepyan May 5 '11 at 12:32

Is that really "= ~" with a space in it?

It should be "=~" with no space. You are currently assigning $data_dir the bitwise negated value of the string.

Your are using the following aren't you?

use strict; use warnings;

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Others have already answered with the cause of the problem - the space between = ~, which should have been =~ without the space.

A valuable lesson is to always add use strict to your scripts; if you'd done so, you would have received a warning like:

Use of uninitialized value $_ in substitution (s///) at (eval 11) line 4.

That would have helped you to figure out that the substitution operator was being used on $_ rather than on $data_dir - because instead of the binding operator =~ binding it to $data_dir, you had = ~.

So, lesson to learn: always use strict - it'll help catch things like this, where you could have a single character wrong, and save you a lot of time.

Incidentally, when working with file paths and desiring portability between platforms, using File::Spec is often a good idea.

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Thanks @David Precious. –  Mihran Hovsepyan May 6 '11 at 4:12

It is because you apply a numeric operator (~) to s/..../g. Try the following:

$data_dir =~  s/...../g;
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