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I am new to perl and not sure how to achieve the following. I am reading a file and putting the lines in a variable called $tline. Next, I am trying to replace some character from the $tline. This substitution fails if $tline has some special characters like (, ?,= etc in it. How to escape the special characters from this variable $tline?

if ($tline ne "") {

   $tline =~ s/\//\%;
}

EDIT

Sorry for the confusions. Here is what I am trying to do.

$tline =~ s/"\//"\<\%\=request\.getContextPath\(\)\%\>\//;

This is working for most of the cases. But when the input file has ? in it, it is failing.

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2  
What exactly are you trying to do? Can you give us a sample of the data you're working with, and what you want it to become? What do you mean when you say the substitution "fails"? –  Alison R. Jan 25 '10 at 20:52
2  
Your regexp seems to be unclosed. s/\//\%/? Is it a typo? I'd suggest that if you have "/" in your expression you should use a different delimiter like : s|/|%|. –  slebetman Jan 25 '10 at 20:54
    
check my answer, updated with reference to quotemeta –  Evan Carroll Jan 25 '10 at 21:05
    
Instead of if($tline ne "") I would use if(length $tline) –  Brad Gilbert Feb 1 '10 at 16:55

5 Answers 5

up vote 7 down vote accepted

How about:

$tline =~ s/\Q$var\E/;

That will cause quotemeta to be applied to contents of $var which is being used as the pattern.

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In my case, $var does not have any special characters but $tline has. –  Shamik Jan 25 '10 at 21:09
    
I am sorry, as I said, I am new to Perl, this worked perfectly fine. Thank you. –  Shamik Jan 25 '10 at 21:17

This isn't a valid regex:

$tline =~ s/\//\%;

It gets read like this to perl

$tline =~ s/a/%;

Where a = /

What you wanted to do is replace a forward-slash with a percent sign you probably want

$tline =~ s/\//%/;

Which is better written like this:

$tline =~ s,/,%,;

You probably also want to replace more than just the first forward-slash, so you want the /g flag:

$tline =~ s,/,%,g;

And, this exactly what tr (transliteration) does:

$tline =~ tr,/,%,;

UPDATE I think what you want is a simple quotemeta() which takes your input, and regex-escapes the meta characters

$ perl -e'print quotemeta("</foo?>")'
\<\/foo\?\>
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You could place all your special characters between square brackets (called a "character class"). The following will replace all left parentheses, question marks and equal signs in your string with percent signs:

my $tline = 'fo(?=o';
$tline =~ s/[(?=]/%/g;
print "$tline\n";

Prints:

fo%%%o
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And I need to get back what I changed, if I change all of ?, = to %, how can I get back them? –  Shamik Jan 25 '10 at 21:10
    
Save a copy of the original string. –  toolic Jan 25 '10 at 21:17

quotemeta is a good function for getting a exact literal with special characters into a regex. And \Q and \E are good operators for doing the same thing inside the regex.

However, you're search expression is not that complex. In your edit, you're simply looking for a double quote and a slash. In fact, I've quite simplified your expression so it contains not a single backslash. So it's not a problem for quotemeta nor for that matter \Q and \E.

Once pared down, I don't see anything in your revised substitution that would cause a problem with '?' in $tline.

Key to the simplification is that '.', '(', and ')' mean nothing special to the replacement section of your expression, so this is equivalent:

$tline =~ s/"\//"<%=request.getContextPath()%>\//;

Not to mention easier to read. Of course this is even easier:

$tline =~ s|"/|"<%=request.getContextPath()%>/|;

Because in Perl, you can choose the delimiter you wish with the s operator.

But with any of these, this works:

use Test::More tests => 1;

my $tline = '"/?"';
$tline =~ s|"/|"<%=request.getContextPath()%>/|;
ok( $tline =~ /getContextPath/ );

It passes the test. Perhaps you're having a problem with more than one substitution on a line. That can be fixed with:

$tline =~ s|"/|"<%=request.getContextPath()%>/|g;

That g is the global switch on the end, saying make this substitution for as many times as it occurs in the input.

However, since I can see what you are doing, I suggest an even tighter specification of what you want to search:

$tline =~ s~\b(href|link|src)="/~$1="<%=2request.getContextPath()%>/~g;

And when I run this:

use Test::More tests => 2;

my $tline = '"/?"';
$tline =~ s/"\//"<%=request.getContextPath()%>\//;
ok( $tline =~ /getContextPath/ );
$tline = 'src="/?/?/beer"';
ok( $tline =~ s~\b(href|link|src)="/~$1="<%=request.getContextPath()%>/~g
   );

I get two successes.

Your true problem is yet unspecified.

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Well, one way to do it is to put all the characters you want to replace in square brackets. Like so:

$string =~ s/[,?=\/]//;  # This will remove the first ',', '?', '=', or '/' from your string.

If you want to remove all the '?' in a string, for example, use a g on the end of it like so:

$string =~ s/[?]//g;

I'm a little rusty, but I believe that you only need a '\' in front of \ or /, (and of course the other special characters like \n,\t, etc...). Like so:

$string =~ s/[\\]/[\/]/g; # Switch from DOS to Unix delimiters.

$string =~ s/[\n\t]//g;   # Remove all newlines and tabs

As others have said, the code you've posted isn't going to work since you forgot the last /. That's another nice reason to keep the "weird" characters in a box.

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