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Is there an elegant way in to update an already existing value in a Map?

This looks too scary:

val a = map.get ( something ) 
if ( a != null ) // case .. excuse my old language
   a.apply( updateFunction )
else 
   map.put ( something, default )
share|improve this question
up vote 8 down vote accepted

Most of the time you can insert something that can be updated when it's created (e.g. if it's a count, you put 0 in it and then update to 1 instead of just putting 1 in to start). In that case,

map.getOrElseUpdate(something, default).apply(updateFunction)

In the rare cases where you can't organize things this way,

map(something) = map.get(something).map(updateFunction).getOrElse(default)

(but you have to refer to something twice).

share|improve this answer
    
yes, thanks i missed it :) – cybye Jan 25 '13 at 20:08
    
but does the same as Kane suggested - in the end. – cybye Jan 25 '13 at 20:12
    
@cybye - getOrElseUpdate is also double-lookup as now implemented, but it at least has the potential to be optimized (for the I-can-update-on-addition case) with a library update (maybe in 2.11 which is supposed to target performance). – Rex Kerr Jan 25 '13 at 20:20
    
but this will need an api change. there is no support for state changes within the values: op => B is not applied to the value. so probably this is meant for initials only – cybye Jan 25 '13 at 20:28
1  
@cybye - That's not clearly what you asked for. If you want map.changeValue(key, f), no, there isn't one. If your value is mutable, what I wrote above will work. – Rex Kerr Jan 25 '13 at 20:40

This is what I usually write... not sure if there are better solutions.

map.get(key) match {
  case None => map.put(key, defaultValue)
  case Some(v) => map(key) = updatedValue
}

In fact update and put are the same for mutable map, but I usually use update on existing entries and put for new ones, just for readability.

Another thing is that if you can figure out what the ultimate value is without checking the existence of the key, you can simply write map(key) = value, at it automatically creates/replaces the entry.

Finally, statements like map(key) += 1 actually works in Map (this is generally true for collections with update function), and so do many simple numeric operations.\


To solve double put, use mutable object instead of immutable values:

class ValueStore(var value: ValueType)
val map = new Map[KeyType, ValueStore]
...
map.get(key) match {
  case None => map.put(key, new ValueStore(defaultValue))
  case Some(v) => v.value = updatedValue
}

As I mentioned in the comment, the underlying structure of HashMap is HashTable, which actually use this mutable wrapper class approach. HashMap is a nicer wrap-up class but you sometimes just have to do duplicated computation.

share|improve this answer
    
this is a double put(or get or at least hash/find) or not? – cybye Jan 25 '13 at 19:19
    
Sorry I don't know what you mean by double put... can you explain more? – Kane Jan 25 '13 at 19:21
    
map(key) gets the hash of the key, searches the key in the map (by using the hash as a hint and searching until it finds it by checking for equal(other) == true) and then sets the value assoc with the key to updatedValue. before doing that, the same thing happend for map.get(key) .. so this is done twice .. – cybye Jan 25 '13 at 19:27
    
@cybye - It's a double lookup, once on the get and once on the put or apply. – Rex Kerr Jan 25 '13 at 20:06
    
yes sure, anyway hash, modulo, equals* – cybye Jan 25 '13 at 20:23

me stupid, you are (quite) right:

map.get(key) match {
  case None => map.put(key, defaultValue)
  case Some(v) => v.apply(updateFunction) // changes state of value
}

tsts thanks

share|improve this answer
    
not easy to see the advantage in this ;) – cybye Jan 25 '13 at 20:50

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