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I have the following url :

http://stagingbugzilla.cpiv.com/html/estVerificationPool/estPendingBugs.php?team_name=General%20administration

Need to proper way to extract the value after "?" Need to find how to explode in perl just the http://example.com part out of the string, and store it in its own variable, split it and save in a variable before passing it.

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pls could nay one answer this?? –  Jenifer_justin May 21 '13 at 5:14

5 Answers 5

up vote 10 down vote accepted

Don't do it yourself, use the URI module, which is designed to make sense of this kind of data.

my $uri = URI->new('http://hostname.com/...?...');
$uri->query;  # The value after the '?'
$uri->scheme; # "http"
$uri->host;   # hostname.com
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i didn't get you properly –  Jenifer_justin May 21 '13 at 5:16
    
install URI with CPAN (yes, you can use modules). Use URI in your code with use URI; to parse your URI string (like the code above), additionally you can use URI::QueryParam; and get the $u->query_param function which can retrieve all of the paramters used in the query, or just the one you're interested in, $u->query_param('team_name') returns General Admission –  MkV May 21 '13 at 6:51

An expansion of this answer, includes query_param:

use URI;
use URI::QueryParam;
my $url = 'http://stagingbugzilla.cpiv.com/html/estVerificationPool/estPendingBugs.php?team_name=General%20administration';
my $uri = URI->new( $url );
my @keys = $uri->query_param(); 
# @keys contains the query parameter names
my $team_name = $uri->query_param( 'team_name' ); 
# $team_name contains the value of the team_name parameter
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Is this just a simple split that's required? If so...

my $foo = "http://stagingbugzilla.cpiv.com/html/estVerificationPool/estPendingBugs.php?team_name=General%20administration";
my @values = split( '\?', $foo );
print $values[1];

There are better ways that are more URL aware, but if that does the trick...

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This regex:

^http://([^/]*)/[^?]*\?(.*)$

when applied to this string:

http://stagingbugzilla.cpiv.com/html/estVerificationPool/estPendingBugs.php?team_name=General%20administration

will yield these captured patterns

1. stagingbugzilla.cpiv.com
2. team_name=General%20administration

The complete code for Perl would be:

$url = "http://stagingbugzilla.cpiv.com/html/estVerificationPool/estPendingBugs.php?team_name=General%20administration";
($domain, $query) = ($url =~ m{^http://([^/]*)/[^?]*\?(.*)$});

With $domain and $query being the parts you want, although using a built in library like Pilcrow suggested is probably wiser.

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i want to split the string from ? –  Jenifer_justin May 21 '13 at 5:20
    
ie, need to split team_name=General%20administration only –  Jenifer_justin May 21 '13 at 5:21
    
So you want all of the actual field names split out, so you can create a dictionary of values like { team_name="General%20administration", another_key="another_value", etc... }? –  Lego Stormtroopr May 21 '13 at 5:23
    
need to split as two strings 1. stagingbugzilla.cpiv.com/html/estVerificationPool/… 2. ?team_name=General%20administration –  Jenifer_justin May 21 '13 at 5:24
    
I've updated my answer with some more applicable code that should help, but Pilcrows suggestion is probably wiser. –  Lego Stormtroopr May 21 '13 at 5:29

To extract the value after ?, use

$url="http://stagingbugzilla.cpiv.com/html/estVerificationPool/estPendingBugs.php?team_name=General%20administration";
($query) = $url =~ /.+?\?(.+)/;

To get the domain name from url and save in the save variable

($url) = $url =~ m{(http://.+?)/};

hope this will help

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i have used the code like below : #!/usr/bin/perl use strict; use warnings; my $string; my $url="stagingbugzilla.cpiv.com/html/estVerificationPool/…;; #$url =~ s/(?<=team_name=).*//g; ($string)=$url=~/.+?\?(.+)/; ($url)=$url=~/(http://.+?)//; print $url; and got the error like below : perl test.pl Unmatched ( in regex; marked by <-- HERE in m/( <-- HERE http:/ at test.pl line 8. –  Jenifer_justin May 21 '13 at 5:36
    
you should escape the '/' from matching string as its delimiter used for matching, use<br> ($url)=$url=~/(http:\/\/.+?)\//; –  user1244533 May 21 '13 at 5:52

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