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Is there any way to generate XML using the literal syntax as such:

<a>
{
  for (i <- Range(1, 3)) yield {
    <b>{i}</b>
  }
}
</a>

that will return

<a><b>1</b><b>2</b></a>

i.e. I want to use just a single compound statement which will somehow return the complete XML literal.

The only way I know is to do it in two steps: in the first step the for-yield statement will return IndexedSeq or something similiar which then in the second step I have to convert it to scala.xml.Elem. That's OK, but I get the feeling that you can be more concise - nearly as concise as what I proposed in my code above.

Thanks.

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3 Answers 3

up vote 1 down vote accepted

What you posted works just fine...

If you want it to be more concise in terms of typing, you could use an inner statement of

(1 to 3).map{i => <b>{i}</b>}
//or
for(i<-1 to 3) yield <b>{i}</b>

So then you would just have this:

val xml = <a>{ (1 to 3).map{ i => <b>{i}</b> } }</a>

Which gives

xml: scala.xml.Elem = <a><b>1</b><b>2</b><b>3</b></a>
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My bad, the comprehension returns a Vector of Elements, which I assume won't be accepted.I don't understand how scala compiler can automatically convert that into something that can be accepted into the literal syntax definition. –  lolski Oct 5 '12 at 16:27
    
As far as I know, anything that can be implicitly converted to a NodeSeq can go in the <a>{ ... }</a>. (This is just my assumption; somebody correct me if I'm wrong) –  Dylan Oct 5 '12 at 19:34

Do you specifically want to use the for comprehension? If not, this should give you the output you are looking for:

<a>{
  (Range(1, 3)).map{ vl => 
     <b>{vl}</b>
  }
}</a>
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I have not understood the intrinsics of map or flatMap completely, but I will look into it, this one's are also very elegant. –  lolski Oct 5 '12 at 16:29

If you want the for syntax, you need an implicit conversion from Seq[Node] to NodeSeq. I would write down the code, but I am on my phone right now...

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