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I have some code that looks something like this...

val text = "<em>emphasized</em>"
val xml = <span>This is some {text} xml</span>

"text" value actually comes from a database, but it will be a string value which contains the "em" element tags.

My question is how to convert the 2 String tags, "<em>" and "</em>", into actual xml inside the NodeSeq... when the snippet this is placed in returns the NodeSeq, I want the "em" tag to be an actual xml element, not a string representation of the xml.

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2 Answers 2

scala.xml.XML.loadString(String): scala.xml.Elem

Take care: this returns an Elem and needs (obviously) sane XML input. The following strings will (for example) raise an exception:

"<em>emphasized</em><a/>" // no Elem but a NodeSeq
"<em>empha<sized</em>" // invalid XML

You can sanitise the first string by adding some dummy XML tag around.

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I tried this, but I'm getting "Content is not allowed in prolog" type errors. I also tested this using a clean / sanitized / hardcoded string with no xml errors, and get the same error. I suspect the "loadString" actually requires a full xml tree including prolog? –  user85116 Dec 14 '11 at 18:25
    
@user85116 If you try that very example you displayed and replace text with scala.xml.XML loadString text, it works. So, if it doesn't for you, then you are not giving us enough information. –  Daniel C. Sobral Dec 14 '11 at 18:40
    
I see the problem now... the "text" variable is not valid xml all by itself (for example it might be "some <em>text</em>"... the "some" at the front is obviously the issue.) However, the final combined NodeSeq would have been valid xml with the "some" out in front; it should have converted into "<span>some <em>text</em></span>". –  user85116 Dec 14 '11 at 18:52

An alternative answer, if you don't have a valid XML snippet, is to compose xml as a String, and then convert everything to XML using XML.loadString.

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Thanks for the reply... please see my comment to Debilski. –  user85116 Dec 14 '11 at 18:26

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