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Does Groovy have a smart way to check if a list is sorted? Precondition is that Groovy actually knows how to sort the objects, e.g. a list of strings.

The way I do right now (with just some test values for this example) is to copy the list to a new list, then sort it and check that they are equal. Something like:

def possiblySorted = ["1", "2", "3"]
def sortedCopy = new ArrayList<>(possiblySorted)
sortedCopy.sort()

I use this in unit tests in several places so it would be nice with something like:

def possiblySorted = ["1", "2", "3"]
possiblySorted.isSorted()

Is there a good way like this to check if a list is sorted in Groovy, or which is the preffered way? I would almost expect Groovy to have something like this, since it is so smart with collections and iteration.

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2 Answers

up vote 4 down vote accepted

Why not just compare it to a sorted instance of the same list?

def possiblySorted = [ 4, 2, 1 ]

// Should fail
assert possiblySorted == possiblySorted.sort( false )

We pass false to the sort method, so it returns a new list rather than modifying the existing one

You could add a method like so:

List.metaClass.isSorted = { -> delegate == delegate.sort( false ) }

Then, you can do:

assert  [ 1, 2, 3 ].isSorted()
assert ![ 1, 3, 2 ].isSorted()
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Yeah, that would do it. I'm from the Java world myself and didn't know about the false parameter, hence extra row copying the list. Thanks! –  Magnilex Feb 28 '13 at 10:00
    
And just to be sure: There is no other shorthand built-in in the Groovy language for this check? –  Magnilex Feb 28 '13 at 10:03
    
@MagnusTengdahl No, not that I know of :-( You can add one to the metaClass of List (or Collection) though (I posted how above in my answer) –  tim_yates Feb 28 '13 at 10:08
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If you want to avoid doing an O(n*log(n)) operation to check if a list is sorted, you can iterate it just once and check if every item is less or equals than the next one:

def isSorted(list) {
    list.size() < 2 || (1..<list.size()).every { list[it - 1] <= list[it] }
}

assert  isSorted([])
assert  isSorted([1])
assert  isSorted([1, 2, 2, 3])
assert !isSorted([1, 2, 3, 2])
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+1 Good call (though with Java 7 I believe n*log(n) is the worst case as java has swapped to use the brilliantly named timsort). You could also make your code fail fast by using: boolean isSorted(list) { list.size() < 2 || !(1..<list.size()).find { list[it - 1] > list[it] } } –  tim_yates Feb 28 '13 at 11:01
1  
Or it's probably less obtuse to use every like so: boolean isSorted(list) { list.size() < 2 || (1..<list.size()).every { list[it - 1] <= list[it] } } –  tim_yates Feb 28 '13 at 11:03
3  
Didn't know about the Timsort, Tim =P; thanks for the link! -- About the second message, isn't it exactly the same solution (apart from the return type declaration)? –  epidemian Feb 28 '13 at 11:08
    
LOL! Yes.... I thought you had each. I apologise profusely (and should have known better) :-( –  tim_yates Feb 28 '13 at 11:12
    
No problem; i just had to do char-by-char diff with my eyes to be sure =P –  epidemian Feb 28 '13 at 11:16
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