3

I'm not sure how removeAll in groovy works, but I expected this to return [40289454470ea94601470ea977d00018]

def list = ['40289454470ea94601470ea977b20014', '40289454470ea94601470ea977d00018']
def list2 = ['40289454470ea94601470ea977b20014']

list.removeAll {
   list2
}

println list

but instead it returns []

please enlighten :(

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2 Answers 2

Reset to default
12

removeAll with a Closure removes every element that the closure returns true for

list2 coerces to true under groovy truth as it isn't empty so your code removes everything

Try

list1 -= list2
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0
0

Instead of using removeAll closure, you should simply use the removeAll method.

list.removeAll {
   list2
}

The way with closure to go : 

list.removeAll {
   list2.contains(it)
}

If list2 contains this element, then it's removed from list

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1
  • i can't seem to get this to work. The subtraction works but not removeAll. def a1 = ['hello','world'] def a2 = ['hello','world'] def list2 = ['world'] a2.removeAll { list2.contains(it) } a1 -= list2 echo a1.join(",") echo a2.join(",")
    – Paul
    Aug 10, 2016 at 19:19

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