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Let the code speak first

def bars = foo.listBars()
def firstBar = bars ? bars.first() : null
def firstBarBetter = foo.listBars()?.getAt(0)

Is there a more elegant or idiomatic way to get the first element of a list, or null if it's not possible? (I wouldn't consider a try-catch block elegant here.)

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What does #listBars return? Groovy shouldn't throw if you try to get an element that doesn't exist from a list. final l = [] assert l[0] == null assert l.getAt(0) == null assert l instanceof ArrayList –  Justin Piper May 1 '12 at 15:19

2 Answers 2

up vote 20 down vote accepted

Not sure using find is most elegant or idiomatic, but it is concise and wont throw an IndexOutOfBoundsException.

def foo 

foo = ['bar', 'baz']
assert "bar" == foo?.find { true }

foo = []
assert null == foo?.find { true }

foo = null
assert null == foo?.find { true }
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4  
+1 for this trick. I could make it even more concise: foo?.find{ it } –  Adam Schmideg Feb 9 '11 at 11:50
2  
Adam, [0].find{it} returns null –  tixxit Nov 21 '11 at 19:02
2  
This would make a great convenience method addition to Groovy maps as "first()" –  Josh Diehl May 4 '12 at 7:47

You could also do

foo[0]

This will throw a NullPointerException when foo is null, but it will return a null value on an empty list, unlinke foo.first() which will throw an exception on empty.

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thanks for sharing! I was getting stuck around idiomatic solution for first element after findAll on a list that could be empty in the first place, or after the findAll and this gave me what I needed –  IT Gumby Jan 22 at 22:30

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