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I can't create a class representing an XML parsed document, using a companion object.

Here is the code of the class:

package models

import javax.xml.bind.Element
import scala.xml.Elem
import javax.xml.validation.SchemaFactory
import javax.xml.transform.stream.StreamSource


trait MyXML {

case class ElémentXML(code_xml: scala.xml.Elem) {

def validate: Boolean = {

try ({
  val schemaLang = "http://www.w3.org/2001/XMLSchema"
  val factory = SchemaFactory.newInstance(schemaLang)
  val schema = factory.newSchema(new StreamSource("Sites_types_libelles.xsd"))
  val validator = schema.newValidator()
  validator.validate(new StreamSource(code_xml.toString))
  true
}) catch {
  case t:Throwable => false
}
}



}

object ElémentXML {

def apply(fichier: String) {

  try{
  val xml_chargé = xml.XML.loadFile(fichier)
  Some(new ElémentXML(xml_chargé))
  }catch{
    case e:Throwable => None
  }
}
}

}

and here is the code for the app using this class:

val xml1:ElémentXML = ElémentXML("app/models/exemple_bon.xml")
xml1 must not beEqualTo(None)

the error is:

type mismatch; found : String("app/models/exemple_bon.xml") required: 
 scala.xml.Elem

I simply don't understand this error(and how I can remove this).

thanks!

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1 Answer 1

up vote 5 down vote accepted

Your apply method is a procedure. Amend it to apply(fichier: String): ElémentXML = ....

The overload with the synthetic case apply is resolved by the expected type.

This why procedure syntax will be deprecated:

apm@mara:~/tmp$ scala -Xfuture -deprecation
Welcome to Scala version 2.11.0-20140129-135431-0e578e6931 (OpenJDK 64-Bit Server VM, Java 1.7.0_25).
Type in expressions to have them evaluated.
Type :help for more information.

scala> def f() { }
<console>:1: warning: Procedure syntax is deprecated. Convert procedure `f` to method by adding `: Unit =`.
       def f() { }
               ^
<console>:7: warning: Procedure syntax is deprecated. Convert procedure `f` to method by adding `: Unit =`.
       def f() { }
               ^
f: ()Unit

One curious effect of this is the last line works by value discard:

scala> :pa
// Entering paste mode (ctrl-D to finish)

case class C(c: Int)
object C {
def apply(s: String): Unit = C(s.toInt)
}

// Exiting paste mode, now interpreting.

defined class C
defined object C

scala> C(4)
res2: C = C(4)

scala> C("4")

scala> val x: C = C(4)
x: C = C(4)

scala> val x: C = C("4")
<console>:11: error: type mismatch;
 found   : String("4")
 required: Int
       val x: C = C("4")
                    ^

scala> val x: Unit = C("4")
x: Unit = ()

scala> val x: Unit = C(4)  // works silently
x: Unit = ()
share|improve this answer
1  
hello, sorry I did not understood very well your answer; what should be the right line of code for my method apply? –  lolveley Jan 31 at 17:30
1  
You need an = after def apply(fichier: String) so it returns a value. –  Kigyo Jan 31 at 18:05
    
thanks.it works –  lolveley Jan 31 at 19:22

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