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I have a domain that contains a property called 'Status'. This property can contain 'A','I','P','Pv','R'.

I have the following query:

def list = Deal.findAll('from Deal as d')

How can I order the results so that rows with status of 'P' are always returned at the top of the result set? (I don't care in what order they come after that).

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Would it be a problem to fetch all where d.property == 'P', and then all the others ordered by d.property, and merge them on the client side? For example: def list = Deal.findAll('from Deal as d where d.prop == "P"'); list.addAll(Deal.findAll('from Deal as d where d.prop <> "P" order by d.prop)) (Btw this is meta-syntax. Adjust to your needs.) –  cimnine Nov 9 '12 at 16:57
    
def list = Deal.findAll('from Deal as d order by (d.status=='P') –  Fabiano Taioli Nov 9 '12 at 17:22

2 Answers 2

up vote 3 down vote accepted

Will this do what you want? Normally I'd test it before answering but I don't have an easy way to do that atm.

def list = Deal.findAll('''from Deal as d order by case d.property when 'P' then 0 else 1 end''')
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You can use the sort method with a comparator:

def list = Deal.findAll('from Deal as d').sort({a,b-> (a.status== 'P' && b.status != 'P') ? 0 : 1 })
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Creating a map and casting to Comparator is not necessary. You can simply pass the closure {a,b-> (a.status== 'P' && b.status != 'P') ? 0 : 1 } to the sort() method. –  ataylor Nov 9 '12 at 17:58
    
True story man, thanks. –  Tiago Farias Nov 9 '12 at 18:07
    
I edited it. =) –  Tiago Farias Nov 9 '12 at 18:08

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