Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I've a Play controller Action that edits a document in MongoDB using ReactiveMongo. The code is shown below. Both name and keywords are optional. I'm creating a temp BSONDocument() and adding tuples to it based on if name and keywords exist are not empty. However, tmp is currently mutable(is a var). I'm wondering how I can get rid of the var.

    def editEntity(id: String, name: Option[String], keywords: Option[String]) = Action          {

    val objectId = new BSONObjectID(id)

    //TODO get rid of var here
    var tmp = BSONDocument()

    if (name.exists(_.trim.nonEmpty)) {
      tmp = tmp.add(("name" -> BSONString(name.get)))
    }

    val typedKeywords : Option[List[String]] = Utils.getKeywords(keywords)
    if (typedKeywords.exists(_.size > 0)) {
      tmp = tmp.add(("keywords" -> typedKeywords.get.map(x => BSONString(x))))
    }

    val modifier = BSONDocument("$set" -> tmp)
    val updateFuture = collection.update(BSONDocument("_id" -> objectId), modifier)
}

UPDATE After looking at the solution from @Vikas it came to me what if there are more (say 10 or 15) number of input Options that I need to deal with. Maybe a fold or reduce based solution will scale better?

share|improve this question
up vote 1 down vote accepted

In your current code you're adding an empty BSONDocument() if none of those if conditions matched? val modifier = BSONDocument("$set" -> tmp) will have an empty tmp if name was None and typedKeyWords was None. Assuming that's what you want here is one approach to get rid of transient var. also note having a var locally (in a method) isn't a bad thing (sure I'll still make that code look bit prettier)

 val typedKeywords : Option[List[String]] = Utils.getKeywords(keywords)
 val bsonDoc = (name,typedKeywords)  match{
  case (Some(n),Some(kw) ) => BSONDocument().add( "name" -> BSONString(n)) .add(("keywords" -> kw.map(x => BSONString(x))))
  case (Some(n), None) => BSONDocument().add( "name" -> BSONString(n))
  case (None,Some(kw)) => BSONDocument().add(("keywords" -> kw.map(x => BSONString(x))))
  case (None,None) => BSONDocument()

}
val modifier = BSONDocument("$set" -> bsonDoc)
share|improve this answer
    
your solution will work and is certainly better than my initial solution. You are correct, if nothing has changed, there is no need to edit the document. I can just return. I'm wondering if a pattern match will scale to say 10 parameters? Maybe a foldLeft on a BSONDocument ? – Soumya Simanta Jun 6 '14 at 23:21

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.