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I have an array of files:

my @plistFiles = glob('Logs/*/*.plist');

which I need to escape, that will contain '(' and ')' as well as the usual spaces.

Here is one of the file paths @plistFiles will return:

Logs/Run 1 (13)/Automation Results.plist

I currently have this code for escaping spaces in file paths which I pass to a command in the Terminal in OSX:

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

So how can I edit this regex to also escape ( and )?

Would this be correct just for escaping ( and )?:

$plistFile =~ s/\(\d)/\\\(\d\\\)/g;
share|improve this question
    
With what do you want to replace "and" ? –  sputnick Oct 25 '12 at 21:53
    
@sputnick I dont want to "replace" but just escape the characters –  stackErr Oct 25 '12 at 21:57
    
what exactly do you want to 'escape' and for what purpose? All ( and ), or only those around numbers? Spaces also? other metacharacters? –  pavel Oct 25 '12 at 22:02
    
@pavel Just (,) around numbers and all spaces, I am using each file path in Terminal so I need those chars escaped. There are no other metachars. –  stackErr Oct 25 '12 at 22:07
    
You didn't specify what you are escaping for, so how can we know what needs to be escaped or how to escape it? –  ikegami Oct 25 '12 at 22:35

4 Answers 4

up vote -1 down vote accepted

To convert e.g. (13) to \(13\), you could write:

$plistFile =~ s/ /\\ /g;
$plistFile =~ s/\((\d+)\)/\\($1\\)/g;

But I think you're probably better off just escaping all instances of ( and ), whether or not they surround numbers:

$plistFile =~ s/([ ()])/\\$1/g;
share|improve this answer
    
I am just trying to understand your last line of code, correct me if I am wrong but that means: any instance of () will be replaced with \ \(\)? –  stackErr Oct 25 '12 at 22:40
    
@user1160022: It means that any space, left-parenthesis, or right-parenthesis will be replaced with a backslash plus itself. (It uses the [...] notation for a character-class, the (...) notation for a capture-group, and the special variable $1 to retrieve the contents of the first capture-group.) –  ruakh Oct 25 '12 at 22:43
    
@Ωmega: It's not necessary, but using $& imposes a performance penalty on all regex-matches anywhere else in the entire program. That penalty is not usually worth losing sleep over, but in the context of a StackOverflow answer, when I don't even know what else the program is doing, I prefer to avoid it. Also, I think $1 is slightly clearer than $&, in that (almost?) all Perl-like regex engines have adopted $1, but several major ones have not adopted $&. (By the way, a nitpick: properly speaking, a "backreference" would be if I'd used something like \1 inside the pattern.) –  ruakh Oct 25 '12 at 23:07
    
@downvoter: Care to explain why? –  ruakh Oct 26 '12 at 4:22

I can't see why a call to quotemeta won't suffice. Yes it will also escape the slashes and dots, but that shouldn't matter.

However it is also simple to escape just whitespace and parentheses.

This program show both techniques

use strict;
use warnings;

use feature 'say';

my $path = 'Logs/Run 1 (13)/Automation Results.plist';
my $escaped = quotemeta $path;
say $escaped;

$escaped = $path =~ s/([\s()])/\\$1/gr;
say $escaped;

output

Logs\/Run\ 1\ \(13\)\/Automation\ Results\.plist

Logs/Run\ 1\ \(13\)/Automation\ Results.plist
share|improve this answer
    
I am learning perl and didn't know about quotemeta, but I have had some experience with regex so I used this approach –  stackErr Oct 25 '12 at 22:58

Using regex you can add escape slashes with

s/[() ]/\\$&/g;

See this demo.

or

s/(?=[() ])/\\/g;

See this demo.

share|improve this answer
    
Thanks for the demo link! –  stackErr Oct 25 '12 at 22:56

You'll find it easier to use {} to delimit your regex. Saves some \ eye wobbliness.

#!/usr/bin/perl
use strict;
use warnings;
use utf8;
use 5.10.0;
use Data::Dumper;

my $to_match = "( this dreadful ) filename";
$to_match =~ s{([\(\)])}{\\$1}g;
say $to_match;

This does this:

$ perl x.pl
\( this dreadful \) filename

If you need to escape spaces as well as ()s then

$to_match =~ s{([\(\s\)])}{\\$1}g;
share|improve this answer
    
Your first paragraph doesn't make sense to me. Using s{}{} instead of s/// will only save backslashes if the pattern or replacement contains / -- which is not the case here. –  ruakh Oct 25 '12 at 22:21

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