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I'm using this regex to find a String that starts with !?, ends with ?!, and has another variable inbetween (in this example "a891d050"). This is what I use:

var pattern = new RegExp(/!\\?.*\s*(a891d050){1}.*\s*\\?!/);

It matches correctly agains this one:


But fails when the string is broken up with html tags.

<span class="userContent"><span>!?v8qbQ5LZDnFLsny7VmVe09HJFL1/</span><wbr /><span class="word_break"></span>WfGD2A:::a891d050?!</span></div></div></div></div>

I tried adding \s and {space}*, but it still fails. The question is, what (special?)characters do I need to account for if I want to ignore whitespace and html tags in my match.

edit: this is how I use the regex:

var pattern = /!\?[\s\S]*a891d050[\s\S]*\?!/;

document.body.innerHTML = document.body.innerHTML.replace(pattern,"new content");

It appears to me that when it encounters the 'plain' string it replaces is correctly. But when faced with String with classes around it and inside, it makes a mess of the classes or doesn't replace at all depending on the context. So I decided to try jquery-replacetext-plugin(as it promises to leave tags as they were) like this:

$("body *").replaceText( pattern, "new content" );

But with no success, the results are the same as before.

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new RegExp(/.../) is wrong. It should be either /.../ or new RegExp("..."). Also, {1} is 100% redundant. – melpomene Nov 25 '12 at 1:36
And, FWIW, the sequence .*\s* can be just .* since you are not capturing anything. – Ray Toal Nov 25 '12 at 1:41
Shouldn't each \\? in your regex be \? instead? \\? optionally matches an actual backslash character, whereas \? matches a question mark. Also, having {1} is redundant, that would happen by default. – nnnnnn Nov 25 '12 at 1:58
It does match on your html string (at least, it worked in Chrome). – nnnnnn Nov 25 '12 at 2:03
@nnnnnn Could you explain how you tested it? It doesn't work here with Chrome. Chrome is the only browser I need too. – 97-109-107 Nov 25 '12 at 12:39

2 Answers 2

Maybe this:

var pattern = /!\?[\s\S]*a891d050[\s\S]*\?!/;

[\s\S] should match any character. I have also removed {1}.

share|improve this answer
up vote 0 down vote accepted

The problem was apparently solved by using this regex:

var pattern = /(!\?)(?:<(?:"[^"]*"['"]*|'[^']*'['"]*|[^'">])*?>)?(.)*?(a891d050)(?:<(?:"[^"]*"['"]*|'[^']*'['"]*|[^'">])*?>)?(.)*?(\?!)/;
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