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Is it possible to expand a map to a list of method arguments

In Python it is possible, eg. Expanding tuples into arguments

I have a def map = ['a':1, 'b':2] and a method def m(a,b)

I want to write smt like m(*map)

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3 Answers

up vote 5 down vote accepted

The spread operator (*) is used to tear a list apart into single elements. This can be used to invoke a method with multiple parameters and then spread a list into the values for the parameters.

List (lists in Groovy are closest related with tuples in Python1,2):

list = [1, 2]
m(*list)

Map:

map = [a: 1, b: 2]
paramsList = map.values().toList()
m(*paramsList)

An importan point is that you pass the arguments by position.

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you pass the arguments by position.. what is the order of the elements in a map? –  Queequeg Nov 19 '12 at 16:37
    
A map is a mapping from unique unordered keys to values, but you can emulate order by clause with sort(), see the Map documentation –  Arturo Herrero Nov 19 '12 at 20:07
    
I understand how maps work, but some are ordered, some not, some are sorted, some not. For instance: if I have a method def m(a,b) and a map def map = [b:1, a:2] then what will be the method call - m(1,2) or m(2,1) or undefined...... –  Queequeg Nov 20 '12 at 13:56
    
I'm not sure. I think that if you have a map def map = [b:1, a:2] the method call is m(1,2) but the implementation could change in the future, it's depend on the data structures used under the hood. Groovy documentation says that a map is an unordered keys to values. You can learn more about this topic here: Sorted maps in groovy –  Arturo Herrero Nov 20 '12 at 15:08
1  
Is the same case as dictionaries in Python: dictionary returns a list of all the keys used in the dictionary, in arbitrary order (if you want it sorted, just use sorted(d.keys()) instead) –  Arturo Herrero Nov 20 '12 at 16:18
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The best I can currently think of is:

@groovy.transform.Canonical
class X {
  def a
  def b

  def fn( a, b ) {
    println "Called with $a $b"
  }
}

def map = [ a:1, b:2 ]

def x = new X( map.values().toList() )

x.fn( map.values().toList() )

However, that takes the order of the map, and not the names of the keys into consideration when calling the function/constructor.

You probably want to add a function/constructor that takes a Map, and do it that way

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*map uses the spread operator? I've seen it used only on methods like map*.values() How to understand the above code? –  Queequeg Nov 19 '12 at 9:49
    
it gets the values() from the map, converts them toList(), and then spreads that list. Adding a brace might help you see what's going on: new X( *(map.values().toList()) ) –  tim_yates Nov 19 '12 at 9:57
    
I don't understand the use of *map. You can simply write map.values().toList() and works fine! –  Arturo Herrero Nov 19 '12 at 10:05
    
@ArturoHerrero Haha, oh yeah... The * was superfluous :-/ –  tim_yates Nov 19 '12 at 10:09
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   mmap = { 'a':1, 'b':2 }

   def m( a, b ):
       return a+b
   print m( **mmap )

30

3

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