65

What is the best way to remove null items from a list in Groovy?

ex: [null, 30, null]

want to return: [30]

1
  • 1
    Funny that nobody asked how the nulls ended up in the list in the first place. Seems like you might be addressing the symptom rather than the problem.
    – Snekse
    Jan 28, 2015 at 23:13

8 Answers 8

146

Just use minus:

[null, 30, null] - null
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  • 2
    This looks simple and great, and helped me Sep 21, 2014 at 7:59
  • 12
    One can also use [null, 30, null].minus(null).That seems more readable to me. Version with '-' reminds about SBT operator abuse. Dec 8, 2015 at 19:50
  • @MikhailFedorov Thanks. Just what I needed. Sep 14, 2016 at 23:05
85

here is an answer if you dont want to keep the original list

void testRemove() {
    def list = [null, 30, null]

    list.removeAll([null])

    assertEquals 1, list.size()
    assertEquals 30, list.get(0)
}

in a handy dandy unit test

1
  • 1
    +1 for the most readable solution (reads like: "remove all nulls") Jul 19, 2010 at 21:40
52

The findAll method should do what you need.

​[null, 30, null]​.findAll {it != null}​
2
  • 1
    [null, 30, null]​.findAll {it}​ will do. Dec 21, 2012 at 9:56
  • 6
    Thomas, findAll {it}​ will remove 0 as well as null. And if that is what you want then you might as well just do a findAll() Feb 2, 2013 at 16:00
17

I think you'll find that this is the shortest, assuming that you don't mind other "false" values also dissappearing:

println([null, 30, null].findAll())

public Collection findAll() finds the items matching the IDENTITY Closure (i.e. matching Groovy truth).

Example:

def items = [1, 2, 0, false, true, '', 'foo', [], [4, 5], null]
assert items.findAll() == [1, 2, true, 'foo', [4, 5]]
11

This can also be achieved by grep:

assert [null, 30, null].grep()​ == [30]​

or

assert [null, 30, null].grep {it}​ == [30]​

or

assert [null, 30, null].grep { it != null } == [30]​
1
2

Simply [null].findAll{null != it} if it is null then it return false so it will not exist in new collection.

1
  • 1
    assertEquals [], [0, false , null].findAll{it} Nov 26, 2014 at 11:55
2

Another way to do it is [null, 20, null].findResults{it}.

2

This does an in place removal of all null items.

myList.removeAll { !it }

If the number 0 is in your domain you can check against null

myList.removeAll { it == null }

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