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There is a string representation of some data:

"jsonData": {
      "data1": {
        "field1": "data1",
        "field2": 1.0,
        "field3": true
      },
      "data211": {
        "field1": "data211",
        "field2": 4343.0,
        "field3": false
      },
      "data344": {
        "field1": "data344",
        "field2": 436778.51,
        "field3": true
      },
      "data41": {
        "field1": "data41",
        "field2": 14348.0,
        "field3": true
      }
    }

How do I represent it in Scala? I thought I could be either

Map[(String, Double, Boolean), String]

or

type KeyValueType = (String, Double, Boolean)
Map[KeyValueType, String]

But nevertheless, it gave me the errro:

error: missing arguments for method apply in class GenMapFactory;
follow this method with `_' if you want to treat it as a partially applied function

and also, I'm unsure it if would be the right representation.

So how do I represent it and, if my approach is right, how do I get rid of the error?

share|improve this question
    
Isn't (String, Double, Boolean) rather the value type and String the key? –  bluenote10 Jun 6 '13 at 12:48
    
@bluenote10, is it? –  Marius Kavansky Jun 6 '13 at 14:38
    
well, you have a key, say "data1" which has three value fields of type (String, Double, Boolean) or even (Double, Boolean) since the first element seems to be (always?) the same. Thus, Map[String, (Double, Boolean)] looks more appropriate to me, unless you really want to specify "data1" by the three values. However, since both versions are unique in the example, only you can really tell :). –  bluenote10 Jun 6 '13 at 15:04

1 Answer 1

up vote 1 down vote accepted

Regarding your error, you probably just need to add () to invoke the apply method, since just an object name (Map) with type parameters is meaningless.

I would advise against using tuples to hold your data. They are over-used by beginners. Use a class instead. Something like

case class MyDataType(field1: String, field2: Double, field3: Boolean)

Then you read you data into a Vector[MyDataType].

share|improve this answer
    
1) Why Vector? I need Map. 2) "just need to add () to invoke the apply method" - how do I do this? –  Marius Kavansky Jun 6 '13 at 12:54
    
1) If each "data1" etc is associated with a single instance of your data type then it might make sense to include it as a String field in that data type. But from your example it seems you already have this item duplicated in the first field. If you really need a Map, use a Map. 2) Map[KeyValueType, String] is meaningless: use Map[KeyValueType, String](). Although this is not very useful because by default you're using an immutable map. –  Luigi Plinge Jun 6 '13 at 13:27
    
why did you suggest to use case class, why not just class? –  Marius Kavansky Jun 6 '13 at 13:29
    
Case classes are the idiomatic way of representing algebraic data types in Scala. They give you a bunch of things for free like sensible equals and copy methods but this is well documented elsewhere. –  Luigi Plinge Jun 6 '13 at 13:40
    
and one more thing: is my Scala's data type represented properly? I'm confusing keys and values in Map in this particular case. –  Marius Kavansky Jun 6 '13 at 14:40

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