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Here's my situation. I want to recognize Markdown for a link (in this case just one particular style of link is fine, it's this format: [link text](url "optional title"), and what I'm trying to do is put this Markdown text into a <pre> tag with the url appropriately wrapped in an <a> tag.

A pseudoexample:

Convert

[link text](url "optional title")

to

[link text](<a href='url'>url</a> "optional title")

So I've dug up the very regex used by the Markdown parser which is this:

/*
text = text.replace(/
    (                           // wrap whole match in $1
        \[
        (
            (?:
                \[[^\]]*\]      // allow brackets nested one level
                |
                [^\[\]]         // or anything else
            )*
        )
        \]
        \(                      // literal paren
        [ \t]*
        ()                      // no id, so leave $3 empty
        <?(                     // href = $4
            (?:
                \([^)]*\)       // allow one level of (correctly nested) parens (think MSDN)
                |
                [^()\s]
            )*?
        )>?                
        [ \t]*
        (                       // $5
            (['"])              // quote char = $6
            (.*?)               // Title = $7
            \6                  // matching quote
            [ \t]*              // ignore any spaces/tabs between closing quote and )
        )?                      // title is optional
        \)
    )
/g, writeAnchorTag);
*/

text = text.replace(/(\[((?:\[[^\]]*\]|[^\[\]])*)\]\([ \t]*()<?((?:\([^)]*\)|[^()\s])*?)>?[ \t]*((['"])(.*?)\6[ \t]*)?\))/g, writeAnchorTag);

The breakdown in the nice comment helps a lot to see what's going on and clearly all I need to do is replace $4 submatch with <a href='$4'>$4</a>.

But of course I can't just do str.replace(re,"<a href='$4'>$4</a>"); because that would replace my entire Markdown link markup (including the link text and optional title) with a plain link. I want the plain link to show up in the original Markdown so that it still looks just like the original Markdown in the <pre> (but now with a clickable link in it).

So, let's see...

Extract $4:

var group_4 = str.replace(re, "$4"); // Does anybody know a more efficient way to do this? I'm not trying to replace I just need to get the 4th group

Well here I'm stuck because I want to stick "<a href='"+group_4+"'>"+group_4+"</a>" in as a replacement for $4.

Anybody have tips for me? I'm pretty sure this can be done, and I suspect it can be done elegantly as well.

I've already found one potential solution (which is wrong) which is to strip out the sections of the regex which are outside of group $4. I don't think this will be sufficient because it does not do any actual link-detection based on the link content (i.e. you could define a Markdown-link using something that is not a real link at all). So I should use the original regex so as to be sure that what I am converting into an <a> is actually part of a (Markdown inline-style) link.

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Thanks for the edit @DavidThomas. I was adding a nice example though and it seems like you killed a lot more superfluous spaces than I added in my example. It now seems lost forever :( I hope a nicer edit-merge system will eventually make its way onto this site. –  Steven Lu Jul 9 '12 at 22:25
    
The "wrap whole match in..." isn't needed, you can use "$&" –  Bergi Jul 9 '12 at 22:26
    
I killed..? I'm sorry, I was just trying to tidy the RegExp so I could read it properly. Not that it helped much, in the end... =/ –  David Thomas Jul 9 '12 at 22:27
    
@Bergi TIL. Thanks –  Steven Lu Jul 9 '12 at 22:27
    
@DavidThomas According to StackOverflow when somebody else makes a change to the same content being edited by you, your edits must be more substantive in order for it to be incorporated. No worries, only cost about 30 seconds of work. –  Steven Lu Jul 9 '12 at 22:28

1 Answer 1

up vote 0 down vote accepted

I think I have a way to attack the problem using what I already know. Simply replace with the original parts. This means there must be other sub-matches that cover the entirety of the expression before and after $4. Supposing there is a group $x that contains the match from the beginning up to $4 and another group $y that contains the match from the end of $4 to the end of the string, all I have to do is str.replace(re,"$x<a href='$4'>$4</a>$y") and be done with it.

Now to see if it is possible to modify our regex to not change its accepted language while providing me these groups.

Update: Looking at it for a bit longer it's actually quite basic:

str.replace(re,"[$2]($4 $5)")

gets me 99% of the way there to fully replicating the original input, and the only part where this is incorrect is in the space between $4 and $5 which in the input is [ \t]* so all I have to do is wrap that into a new group in the original regex. I believe it will become $5 so it will be:

/(\[((?:\[[^\]]*\]|[^\[\]])*)\]\([ \t]*()<?((?:\([^)]*\)|[^()\s])*?)>?([ \t]*)((['"])(.*?)\6[ \t]*)?\))/g
                                                                      ^      ^

Carats on the line below indicate where parens were added.

str.replace(re,"[$2]($4$5$6)")

should yield the exact original, so

str.replace(re,"[$2](<a href='$4'>$4</a>$5$6)")

ought to do it.

Now what's left is devising a way to only escape the HTML outside of these link constructs because I don't want to escape the anchor tag. Hmmm.

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