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Basically, I want to do "zipzam&&&?&&&?&&&" -> "zipzam%26%26%26?&&&?&&&". I can do that without regex many different ways, but it'd cleanup things a tad bit if I could do it with regex.

Thanks

Edit: "zip=zam&&&=?&&&?&&&" -> "zip=zam%26%26%26=?&&&?&&&" should make things a little clearer.

Edit: "zip=zam=&=&=&=?&&&?&&&" -> "zip=zam=%26=%26=%26=?&&&?&&&" should make things clearer.

However, theses are just examples. I still want to replace all '&' before the first '?' no matter where the '&' are before the first '?' and no matter if the '&' are consecutive or not.

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8 Answers 8

up vote 4 down vote accepted

This should do it:

"zip=zam=&=&=&=?&&&?&&&".replace(/^[^?]+/, function(match) { return match.replace(/&/g, "%26"); });
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@Gumbo I think your last one does the trick. Let me double check for a bit. –  Shadow2531 Jan 26 '09 at 15:05
    
@Gumbo Thanks. The last one does it. And, if there's no '?' present, it turns all the & to %26, which is what I want too. –  Shadow2531 Jan 26 '09 at 15:12
    
nice simple semi-recursion solution, better presented than my efforts +1 :) –  annakata Jan 26 '09 at 15:28

you need negative lookbehinds which are tricky to replicate in JS, but fortunately there are ways and means:

var x = "zipzam&&&?&&&?&&&";

x.replace(/(&+)(?=.*?\?)/,function ($1) {for(var i=$1.length, s='';i;i--){s+='%26';} return s;})

commentary: this works because it's not global. The first match is therefore a given, and the trick of replacing all of the matching "&" chars 1:1 with "%26" is achieved with the function loop


edit: a solution for unknown groupings of "&" can be achieved simply (if perhaps a little clunkily) with a little modification. The basic pattern for replacer methods is infinitely flexible.

var x = "zipzam&foo&bar&baz?&&&?&&&";

var f = function ($1,$2)
{
  return $2 + ($2=='' || $2.indexOf('?')>-1 ? '&' : '%26')
}

x.replace(/(.*?)&(?=.*?\?)/g,f)
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This seems to produce the result I want: alert("zip=zam&&&=?&&&?&&&".replace(/(&+)(?=.*?\?)/, encodeURIComponent)); However, am I missing something? –  Shadow2531 Jan 26 '09 at 14:13
    
@Will - WFM, produces "zipzam%26%26%26?&&&?&&&" –  annakata Jan 26 '09 at 14:20
    
Not sure why I'm getting different results. I'll bow to you guys. –  Will Jan 26 '09 at 14:22
    
@Shadow - nope, that could be a clean solution for you. The encodeURIComponent method will achieve the same result as the anon method above in this case, since the first argument to the method is still going to be the match, you gain built-in handling, but lose some flexibility. It's a good solution –  annakata Jan 26 '09 at 14:25
    
@Will - I'm just running this on an html page in my editor, can't imagine why you'd see anything different? –  annakata Jan 26 '09 at 14:26

This should do it:

^[^?]*&[^?]*\?
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I'm not sure how you would use this pattern to achieve the goal, –  AnthonyWJones Jan 26 '09 at 13:29

Or this one, I think:

^[^?]*(&+?)\?
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@Will, the idea that i thought is to match the "&" in a group. –  José Leal Jan 26 '09 at 13:47
    
See, the first group? –  José Leal Jan 26 '09 at 13:49
    
I think my tests are in error. I've removed my comments. –  Will Jan 26 '09 at 14:24

In this case regexes are really not the most appropiate things to use. A simple search for the first index of '?' and then replacing each '&' character would be best. However, if you really want a regex then this should do the job.

(?:.*?(&))*?\?
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This close enough to what you are after:-

alert("zipzam&&&?&&&?&&&".replace(/^([^&\?]*)(&*)\?/, function(s, p, m)
{
for (var i = 0; i < m.length; i++) p += '%26';
return  p +'?';
}));
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I think I'm getting some incorrect results from my testing. I'm removing all my comments. –  Will Jan 26 '09 at 14:23

Since the OP only wants to match ampersands before the first question mark, slightly modifying Michael Borgwardt's answer gives me this Regex which appears to be appropriate :

^[^?&]*(\&+)\?

Replace all matches with "%26"

This will not match zipzam&&abc?&&&?&&& because the first "?" does not have an ampersand immediately before it.

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As far as the javascript part, I can't answer that. But I can give you a regex that will match, separately, each '&' after the first bit of text and before the first '?'

(?<!\?.{0,2})&+?

Which, in human terms, says:

Match as few &'s as possible that are NOT after '?', '?X' or '?XX' where X is any character.

It only matches '&'s, so it won't match anything in the initial bit of text. It's a non-greedy match (+?) so it matches the first & and stops, then matches the second & and stops, etc.

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The javascript part is trivial compared to the regex part. If you don't like, fine. You shouldn't downvote people who provide 80% of your solution. –  Will Jan 26 '09 at 14:25
    
fwiw, the problem here is that JS doesn't support the neg lookbehind (or any lookbehind), oh and + and ? at the end are working against each other –  annakata Jan 26 '09 at 14:27
    
@will: Down vote removed, sorry. @annakata: is that true of all implementations of Javascript or MS JScript, I can't remember if Ecma defines the Regex it supports. –  AnthonyWJones Jan 26 '09 at 14:45
    
@Anthony - ECMA does define it's regex grammar in section 15.10. It describes lookaheads in depth, but not a word on lookbehind. However the ?< and ?<! formats are generally described as ECMA style, which leaves me, for one, thoroughly confused. –  annakata Jan 26 '09 at 15:27

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