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I'm using the grails findAllBy() method to return a list of Position(s). Position has an integer field called location, which ranges from 1 to 15. I need to find the lowest location in the position list that is free.

For example, if there are positions at locations 1,2 and 4, then the algorithm should return 3. If locations 1 - 4 were filled, it would return 5.

Is there some simple groovy list/map functions to get the right number?

Thanks

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3 Answers 3

up vote 6 down vote accepted

If your list of positions were (limited to a mx of 5 for brevity):

def list = [ 1, 2, 4, 5 ]

And you know that you have a maximum of 5 of them, you can do:

(1..5).minus(list).min()

Which would give you 3

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Thanks much, this works. Can you tell me why this starts with (1..5) and not [1..5]? –  Ray Aug 13 '11 at 18:42
    
@Ray No problems...here goes an explanation: (1..5) is an IntRange object starting at 1 and ending with 5 (IntRange is itself an instance of List as you can see from the jdk page). [1..5] is a list containing a single item (the IntRange instance). To use the square braces, you'd need to spread operator to add all elements of the Range to the List, ie: [*1..5]. Hope this makes sense...? –  tim_yates Aug 13 '11 at 19:13
    
Awesome, thanks much Tim. –  Ray Aug 13 '11 at 19:42

Just another option, because I originally thought he wanted to know the first unused slot in a list, say you had this:

def list = ['a', 'b', null, 'd', 'e', null, 'g']

You could easily find the first empty slot in the array by doing this:

def firstOpen = list.findIndexOf{ !it } // or it == null if you need to avoid groovy truth
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Thanks for this example as well! I think I can use this technique somewhere else! –  Ray Aug 13 '11 at 19:45

Tim's way works, and is good for small ranges. If you've got the items sorted by location already, you can do it in O(n) by leveraging findResult

def firstMissing = 0
println list.findResult { (it.location != ++firstMissing) ? firstMissing : null }

prints 3.

If they're not sorted, you can either modify your db query to sort them, or add sort{it.location} in there.

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