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I was trying to match the example in , <p><a href="example/index.html">LinkToPage</a></p>

With rubular.com I could get something like <a href=\"(.*)?\/index.html\">.*<\/a>.

I'll be using this in Pattern.compile in Java. I know that \ has to be escaped as well, and I've come up with <a href=\\\"(.*)?\\\/index.html\\\">.*<\\\/a> and a few more variations but I'm getting it wrong. I tested on regexplanet. Can anyone help me with this?

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No escaping necessary here. Just use ...=\"... A backslash only needs to be escaped, when you actually want a backslash. And in a regex, you have to do it twice. –  jlordo Jun 3 '13 at 19:34
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If it's an escaping issue, try printing your string to the command line to figure out what it thinks it is and correcting accordingly. All those backslashes can get annoying. –  chessbot Jun 3 '13 at 19:35
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Since this is HTML, you should consider using an HTML parser... Like, for instance, jsoup. –  fge Jun 3 '13 at 19:38
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You don't need \ before / –  Pshemo Jun 3 '13 at 19:38
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replace ...\/... with .../... –  jlordo Jun 3 '13 at 19:38

2 Answers 2

Use "<a href=\"(.*)/index.html\">.*</a>" in your Java code.

You only need to escape " because it's a Java string literal.

You don't need to escape /, because you aren't delimiting your regex with slashes (as you would be in Ruby).

Also, (.*)? makes no sense. Just use (.*). * can already match "nothing", so there's no point in having the ?.

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Pattern.compile("<a href=\"(.*)?/index.html\">.*</a>");

That should fix your regex. You do not need to escape the forward slashes.

However I am obligated to present you with the standard caution against parsing HTML with regex:

RegEx match open tags except XHTML self-contained tags

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