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note: I'm -not- trying to parse HTML with regex

I'm trying to replace any content wrapped in $ signs ($for example$) in a string. I've managed to come up with str.replace(/\$([^\$]*)\$/g), "hello $1!"), but I'm having issues with making sure I don't replace such strings when they are wrapped in HTML tags.

Example string: $someone$, <a>$welcome$</a>, and $another$

Expression: /[^>]\$([^\$]*)\$[^<]/g

Expected output: hello someone!, <a>$welcome</a>, and hello another!

Actual output: $someonhello , !elcomhello , and !nother$

Test code: alert("$someone$, <a>$welcome$</a>, and $another$".replace(/[^>]\$([^\$]*)\$[^<]/g, "hello $1!"));

fiddle: http://jsfiddle.net/WMWHZ/

Thanks!

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1  
i think we need to take a step back. How are you getting this text that you are parsing? What is the real problem you are trying to solve? – mkoryak May 24 '12 at 14:54
    
When you speak about content that is wrapped in HTML tags, you actually are talking about parsing HTML. Because how would you otherwise decide what is wrapped in HTML tags if not by parsing? – Gumbo May 24 '12 at 14:59
    
... and wouldn't every text be wrapped in some HTML tag, actually? – Joey May 24 '12 at 15:01
    
I think he means tightly wrapped, so it has just a text node as a child with a nodeValue beginning and ending with a '$'. – MaxArt May 24 '12 at 15:04
    
@mkoryak: I'm parsing a textarea that might contain HTML along with special text wrapped in $'s, which I will do something special to; A problems rises when I have such symbols inside HTML tags, which I don't want to touch. MaxArt has it right, if I understood correctly. I could've rephrased the question to say "ignore stuff inside brackets" but I thought it would be better to keep it in context, as HTML tags are a popular discussion around regular expressions. Thanks all btw! – Dvir Azulay May 24 '12 at 15:12
up vote 4 down vote accepted

Keep in mind that you have 6 '$' in your test case. The problem here is that when you try to check if the previous character isn't a '>', the regexp moves forward and matches what's between the 4th and the 5th dollar symbol, capturing "</a>, and " and making a mess.

Try this one:

$('div').text(test.replace(/(^|[^>])\$([^<][^\$]*)\$(?!<)/g, "$1hello $2!"))​

Javascript doesn't support lookbehinds in regular expressions, but it does support lookaheads (the (?!<) part). To emulate lookbehinds, you correctly tried to put [^>] before the dollar, but then the character is matched so you have to catch it and put it again in the string.

You just have to refine it a little, because if the '$' is at the beginning of the string, the group isn't captured.

Also, to avoid problems like the one above, you should check if there isn't a '<' after the first dollar, so I put a [^<] at the beginning of the capturing group. This also mean that it won't catch empty strings between dollar symbols (as in '$$'), they must contain at least one character.

This way, you have the expected result.

share|improve this answer
    
you should update the fiddle and post that – mkoryak May 24 '12 at 15:02
    
Good, you're welcome: jsfiddle.net/WMWHZ/1 – MaxArt May 24 '12 at 15:05
    
The (^|[^>]) group should be non-capturing (?:^|[^>]) or you can capture unwanted spaces. – Mark M May 24 '12 at 15:11
    
You have to capture it so you can put it back in in the replacement string. Otherwise the > gets removed. – mcrumley May 24 '12 at 15:12
1  
@DvirAzulay: I don't think $alpha$$beta$ is possible without lookbehinds. – mcrumley May 24 '12 at 15:38

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