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How can I use Groovy to add an item to the beginning of a list?

42
list.add(0, myObject);

You can also read this for some other valuable examples: http://groovy.codehaus.org/JN1015-Collections

17

Another option would be using the spread operator * which expands a list into its elements:

def list = [2, 3]
def element = 1

assert [element, *list] == [1, 2, 3]

Another alternative would be to put the element into a list and concatenate the two lists:

assert [element] + list == [1, 2, 3]​
  • 2
    FYI, if running within a jenkins pipeline via Groovy CPS then newList.addAll(oldList) is a better option. The CPS will not tolerate the '*' operator – Peter Kahn May 8 at 19:28
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Caution!

From Groovy 2.5:

list.push( myObject )

Prior to Groovy 2.5 list.push appends ... but from 2.5/2.6 (not yet Beta) it will (it seems) prepend, "to align with Java"... indeed, java.util.Stack.push has always prepended.

In fact this push method does not belong to List, but to GDK 2.5 DefaultGroovyMethods, signature <T> public static boolean push(List<T> self, T value). However, because of Groovy syntax magic we shall write as above: list.push( myObject ).

1
def list = [4, 3, 2, 1, 0]

list.plus(0, 5)

assert list == [5, 4, 3, 2, 1, 0]

You can find more examples at this link

  • 2
    Interesting find. Question is, um, why? Java's list.add( n, object ) seems perfectly serviceable. Not sure what I think about Groovy doubling methods for the sake of it (unless there's a reasonable explanation of course). Also, wouldn't it have been more helpful to add addFirst and addLast, as from java's Deque? – mike rodent Apr 29 '18 at 13:01
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    @mikerodent, list.plus returns a copy of the original list with the new element added (immutable operation, the operand stays untouched), while list.add just adds the element to the operand list. – Alessio Gaeta Jul 27 '18 at 8:38

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