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I'm looking for a regular expression to remove a single parameter from a query string, and I want to do it in a single regular expression if possible.

Say I want to remove the foo parameter. Right now I use this:

/&?foo\=[^&]+/

That works as long as foo is not the first parameter in the query string. If it is, then my new query string starts with an ampersand. (For example, "foo=123&bar=456" gives a result of "&bar=456".) Right now, I'm just checking after the regex if the query string starts with ampersand, and chopping it off if it does.

Example edge cases:

Input                    |  Expected Output
-------------------------+--------------------
foo=123                  |  (empty string)
foo=123&bar=456          |  bar=456
bar=456&foo=123          |  bar=456
abc=789&foo=123&bar=456  |  abc=789&bar=456

Edit

OK as pointed out in comments there are there are way more edge cases than I originally considered. I got the following regex to work with all of them:

/&foo(\=[^&]*)?(?=&|$)|^foo(\=[^&]*)?(&|$)/

This is modified from Mark Byers's answer, which is why I'm accepting that one, but Roger Pate's input helped a lot too.

Here is the full suite of test cases I'm using, and a Perl script which tests them.

Input                    | Expected Output
-------------------------+-------------------
foo                      | 
foo&bar=456              | bar=456
bar=456&foo              | bar=456
abc=789&foo&bar=456      | abc=789&bar=456
-------------------------+-------------------
foo=                     | 
foo=&bar=456             | bar=456
bar=456&foo=             | bar=456
abc=789&foo=&bar=456     | abc=789&bar=456
-------------------------+-------------------
foo=123                  | 
foo=123&bar=456          | bar=456
bar=456&foo=123          | bar=456
abc=789&foo=123&bar=456  | abc=789&bar=456
-------------------------+-------------------
xfoo                     | xfoo
xfoo&bar=456             | xfoo&bar=456
bar=456&xfoo             | bar=456&xfoo
abc=789&xfoo&bar=456     | abc=789&xfoo&bar=456
-------------------------+-------------------
xfoo=                    | xfoo=
xfoo=&bar=456            | xfoo=&bar=456
bar=456&xfoo=            | bar=456&xfoo=
abc=789&xfoo=&bar=456    | abc=789&xfoo=&bar=456
-------------------------+-------------------
xfoo=123                 | xfoo=123
xfoo=123&bar=456         | xfoo=123&bar=456
bar=456&xfoo=123         | bar=456&xfoo=123
abc=789&xfoo=123&bar=456 | abc=789&xfoo=123&bar=456
-------------------------+-------------------
foox                     | foox
foox&bar=456             | foox&bar=456
bar=456&foox             | bar=456&foox
abc=789&foox&bar=456     | abc=789&foox&bar=456
-------------------------+-------------------
foox=                    | foox=
foox=&bar=456            | foox=&bar=456
bar=456&foox=            | bar=456&foox=
abc=789&foox=&bar=456    | abc=789&foox=&bar=456
-------------------------+-------------------
foox=123                 | foox=123
foox=123&bar=456         | foox=123&bar=456
bar=456&foox=123         | bar=456&foox=123
abc=789&foox=123&bar=456 | abc=789&foox=123&bar=456

Test script (Perl)

@in = ('foo'     , 'foo&bar=456'     , 'bar=456&foo'     , 'abc=789&foo&bar=456'
      ,'foo='    , 'foo=&bar=456'    , 'bar=456&foo='    , 'abc=789&foo=&bar=456'
      ,'foo=123' , 'foo=123&bar=456' , 'bar=456&foo=123' , 'abc=789&foo=123&bar=456'
      ,'xfoo'    , 'xfoo&bar=456'    , 'bar=456&xfoo'    , 'abc=789&xfoo&bar=456'
      ,'xfoo='   , 'xfoo=&bar=456'   , 'bar=456&xfoo='   , 'abc=789&xfoo=&bar=456'
      ,'xfoo=123', 'xfoo=123&bar=456', 'bar=456&xfoo=123', 'abc=789&xfoo=123&bar=456'
      ,'foox'    , 'foox&bar=456'    , 'bar=456&foox'    , 'abc=789&foox&bar=456'
      ,'foox='   , 'foox=&bar=456'   , 'bar=456&foox='   , 'abc=789&foox=&bar=456'
      ,'foox=123', 'foox=123&bar=456', 'bar=456&foox=123', 'abc=789&foox=123&bar=456'
      );

@exp = (''        , 'bar=456'         , 'bar=456'         , 'abc=789&bar=456'
       ,''        , 'bar=456'         , 'bar=456'         , 'abc=789&bar=456'
       ,''        , 'bar=456'         , 'bar=456'         , 'abc=789&bar=456'
       ,'xfoo'    , 'xfoo&bar=456'    , 'bar=456&xfoo'    , 'abc=789&xfoo&bar=456'
       ,'xfoo='   , 'xfoo=&bar=456'   , 'bar=456&xfoo='   , 'abc=789&xfoo=&bar=456'
       ,'xfoo=123', 'xfoo=123&bar=456', 'bar=456&xfoo=123', 'abc=789&xfoo=123&bar=456'
       ,'foox'    , 'foox&bar=456'    , 'bar=456&foox'    , 'abc=789&foox&bar=456'
       ,'foox='   , 'foox=&bar=456'   , 'bar=456&foox='   , 'abc=789&foox=&bar=456'
       ,'foox=123', 'foox=123&bar=456', 'bar=456&foox=123', 'abc=789&foox=123&bar=456'
       );

print "Succ | Input                    | Output                   | Expected                \n";
print "-----+--------------------------+--------------------------+-------------------------\n";

for($i=0; $i <= $#in; $i++)
{
  $out = $in[$i];
  $out =~ s/_PUT_REGEX_HERE_//;

  $succ = ($out eq $exp[$i] ? 'PASS' : 'FAIL');
  #if($succ eq 'FAIL')
  #{
    printf("%s | %- 24s | %- 24s | %- 24s\n", $succ, $in[$i], $out, $exp[$i]);
  #}
}
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Additional edge cases: oopsfoo=123, foo, foo=---all being the only, first, last, and middle parameter. (so 12 total here) –  Roger Pate Dec 3 '09 at 21:03
    
@Roger Pate: thanks, didn't think about that. also foobar=123, foobar, and foobar=, to ensure that the check for foo doesn't hit them –  Kip Dec 3 '09 at 21:11
    
What is the expected output if the input is foo=? –  Mark Byers Dec 3 '09 at 21:19
    
@Mark Byers: empty string. I'm going to put a more complete sample output up in a few minutes, when i get my test script presentable... –  Kip Dec 3 '09 at 21:27
    
Thanks, the java version seems to be: String regex = "&"+paramToRemove+"(\\=[^&]*)?(?=&|$)|^"+paramToRemove+"(\\=[^&]*)?(&|$)"; –  Sebastien Lorber Nov 27 '12 at 10:14
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7 Answers

up vote 11 down vote accepted

If you want to do this in just one regular expression, you could do this:

/&foo(=[^&]*)?|^foo(=[^&]*)?&?/

This is because you need to match either an ampersand before the foo=..., or one after, or neither, but not both.

To be honest, I think it's better the way you did it: removing the trailing ampersand in a separate step.

share|improve this answer
1  
Why is both not valid? Input: ?blah&foo=abc&blah –  Roger Pate Dec 3 '09 at 20:44
1  
@Roger Pate: both is valid input, but you only want to match exactly one of them (because i'm replacing whatever is matched with empty string) –  Kip Dec 3 '09 at 21:12
    
Try running this pattern against Roger's test cases. –  Greg Bacon Dec 3 '09 at 22:16
4  
Accepted this because the solution I got working to all my test cases (see edit to my question) was modified version of this idea: /&foo(\=[^&]*)?(?=&|$)|^foo(\=[^&]*)?(&|$)/ –  Kip Dec 3 '09 at 22:20
    
gbacon: the only cases it failed on were those containing 'foo' without a value. I've updated the regex to handle this, and it passes all cases now. –  Mark Byers Dec 3 '09 at 22:30
show 2 more comments
/(?<=&|\?)foo(=[^&]*)?(&|$)/

Uses lookbehind and the last group to "anchor" the match, and allows a missing value. Change the \? to ^ if you've already stripped off the question mark from the query string.

Regex is still not a substitute for a real parser of the query string, however.

Update: Test script: (run it at codepad.org)

import re

regex = r"(^|(?<=&))foo(=[^&]*)?(&|$)"

cases = {
  "foo=123": "",
  "foo=123&bar=456": "bar=456",
  "bar=456&foo=123": "bar=456",
  "abc=789&foo=123&bar=456": "abc=789&bar=456",

  "oopsfoo=123": "oopsfoo=123",
  "oopsfoo=123&bar=456": "oopsfoo=123&bar=456",
  "bar=456&oopsfoo=123": "bar=456&oopsfoo=123",
  "abc=789&oopsfoo=123&bar=456": "abc=789&oopsfoo=123&bar=456",

  "foo": "",
  "foo&bar=456": "bar=456",
  "bar=456&foo": "bar=456",
  "abc=789&foo&bar=456": "abc=789&bar=456",

  "foo=": "",
  "foo=&bar=456": "bar=456",
  "bar=456&foo=": "bar=456",
  "abc=789&foo=&bar=456": "abc=789&bar=456",
}

failures = 0
for input, expected in cases.items():
  got = re.sub(regex, "", input)
  if got != expected:
    print "failed: input=%r expected=%r got=%r" % (input, expected, got)
    failures += 1
if not failures:
  print "Success"

It shows where my approach failed, Mark has the right of it—which should show why you shouldn't do this with regex.. :P


The problem is associating the query parameter with exactly one ampersand, and—if you must use regex (if you haven't picked up on it :P, I'd use a separate parser, which might use regex inside it, but still actually understand the format)—one solution would be to make sure there's exactly one ampersand per parameter: replace the leading ? with a &.

This gives /&foo(=[^&]*)?(?=&|$)/, which is very straight forward and the best you're going to get. Remove the leading & in the final result (or change it back into a ?, etc.). Modifying the test case to do this uses the same cases as above, and changes the loop to:

failures = 0
for input, expected in cases.items():
  input = "&" + input
  got = re.sub(regex, "", input)
  if got[:1] == "&":
    got = got[1:]
  if got != expected:
    print "failed: input=%r expected=%r got=%r" % (input, expected, got)
    failures += 1
if not failures:
  print "Success"
share|improve this answer
    
having some problems with this one, but i'm working on it. yes, there is no \?, my string is only the query string –  Kip Dec 3 '09 at 21:16
    
fails for these inputs: bar=456&foo, bar=456&foo=, bar=456&foo=123 –  Kip Dec 3 '09 at 21:51
    
Yes, I know, that's why I said my approach fails. :) –  Roger Pate Dec 3 '09 at 21:59
1  
+1 for providing test code. Even though your solution didn't quite work, the test code is useful. –  Mark Byers Dec 3 '09 at 22:03
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Having a query string that starts with & is harmless--why not leave it that way? In any case, I suggest that you search for the trailing ampersand and use \b to match the beginning of foo w/o taking in a previous character:

 /\bfoo\=[^&]+&?/
share|improve this answer
    
Using a trailing ampersand will give a problem with the third example. –  catchmeifyoutry Dec 3 '09 at 20:39
    
Note that the trailing ampersand is optional in the regex that I gave. –  JSBձոգչ Dec 3 '09 at 20:42
    
yeah i thought about leaving the extra &, but it looked a little sloppy to me. This regex will leave a trailing ampersand on the result. i.e. \bfoo\=[^&]+&? -> bar=456&. to get it to work with foo or foo=, and not with xfoo or foox, I modified it to this: /\bfoo(\=[^&]*)?(&|$)/ –  Kip Dec 3 '09 at 22:07
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It's a bit silly but I started trying to solve this with a regexp and wanted to finally get it working :)

$str[] = 'foo=123';
$str[] = 'foo=123&bar=456';
$str[] = 'bar=456&foo=123';
$str[] = 'abc=789&foo=123&bar=456';

foreach ($str as $string) {
	echo preg_replace('#(?:^|\b)(&?)foo=[^&]+(&?)#e', "'$1'=='&' && '$2'=='&' ? '&' : ''", $string), "\n";
}

the replace part is messed up because apparently it gets confused if the captured characters are '&'s

Also, it doesn't match afoo and the like.

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Thanks. Yes it uses backslashes for escaping, and you're right, I don't need the /'s.

This seems to work, though it doesn't do it in one line as requested in the original question.

    public static string RemoveQueryStringParameter(string url, string keyToRemove)
    {
        //if first parameter, leave ?, take away trailing &
        string pattern = @"\?" + keyToRemove + "[^&]*&?"; 
        url = Regex.Replace(url, pattern, "?");
        //if subsequent parameter, take away leading &
        pattern = "&" + keyToRemove + "[^&]*"; 
        url =  Regex.Replace(url, pattern, "");
        return url;
    }
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I based myself on your implementation to get a Java impl that seems to work:

  public static String removeParameterFromQueryString(String queryString,String paramToRemove) {
    Preconditions.checkArgument(queryString != null,"Empty querystring");
    Preconditions.checkArgument(paramToRemove != null,"Empty param");
    String oneParam = "^"+paramToRemove+"(=[^&]*)$";
    String begin = "^"+paramToRemove+"(=[^&]*)(&?)";
    String end = "&"+paramToRemove+"(=[^&]*)$";
    String middle = "(?<=[&])"+paramToRemove+"(=[^&]*)&";
    String removedMiddleParams = queryString.replaceAll(middle,"");
    String removedBeginParams = removedMiddleParams.replaceAll(begin,"");
    String removedEndParams = removedBeginParams.replaceAll(end,"");
    return removedEndParams.replaceAll(oneParam,"");
  }

I had troubles in some cases with your implementation because sometimes it did not delete a &, and did it with multiple steps which seems easier to understand.

I had a problem with your version, particularly when a param was in the query string multiple times (like param1=toto&param2=xxx&param1=YYY&param3=ZZZ&param1....)

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You can use the following regex:

[\?|&](?<name>.*?)=[^&]*&?

If you want to do exact match you can replace (?<name>.*?) with a url parameter. e.g.:

[\?|&]foo=[^&]*&?

to match any variable like foo=xxxx in any URL.

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