6

Assuming I have list of maps in Groovy:

def listOfMaps = [
[k: 1, n: 'Name1', d1: 'a', d2: 'b'],
[k: 2, n: 'Name2', d1: 'c', d2: 'd'],
[k: 1, n: 'Name3', d1: 'e', d2: 'f'],
[k: 4, n: 'Name4', d1: 'g', d2: 'h']]

I need to find if there exist (or not) items, where k is equal, but n is not. E.g. in this case we have two map records with "k" = 1 and "n" is 'Name1' and 'Name3'. How can I find such data? I suppose I should group by "k" and count distinct values in "n", if there are more than 1 unique values in "n" for certain "k" - we found such data. I'm completely stuck so any help will be appreciated. Thanks

5 Answers 5

5

EDIT

Now I've worked out what you meant, here's the code:

listOfMaps.groupBy { 
   it.k }.
values().
findAll { l -> 
   l.size() > 1 && (l.size() == l.unique { e -> e.n }.size()) 
}

At the beginning the list is grouped by k element, then among the values we search for lists with size higher than 1 and which size is equal to count of unique n elements. It works correctly.

OLD ANSWERS

You can try the combination of findAll and unique:

def listOfMaps = [
    [k: 1, n: 'Name1', d1: 'a', d2: 'b'],
    [k: 2, n: 'Name2', d1: 'c', d2: 'd'],
    [k: 1, n: 'Name3', d1: 'e', d2: 'f'],
    [k: 4, n: 'Name4', d1: 'g', d2: 'h'],
]

listOfMaps.findAll { it.k == 1 }.unique { it.n }

Or with groupBy:

listOfMaps.groupBy { it.k }[1].unique { it.n }

In groovy there are many ways of doing it ;)

4

If you are interested in a reducing version, this one builds a map of k to a set of ns.

def r = listOfMaps.inject([:].withDefault{[].toSet()}) { m, it -> 
    m.get(it.k).add(it.n); m }
println r.findAll{ it.value.size()>1 }
// => [1:[Name3, Name1]]
3
listOfMaps.groupBy { [it.k, it.n] }.keySet().countBy { it[0] }.any { it.value > 1 }

All you need is a combination of k's and n's to compare. You can groupBy the way you want it. I preferred to group by a list so that I can getAt(0) to check if duplicates exist. Since, keySet() is a Set, no two items ( which are lists ) will be the same. Then we just have to check that the first item (k) is unique or not.

0

I could not figure out a way to compare n, but give this a shot:

// Finds a match
assert [[k: 1, n: 'Name1', d1: 'a', d2: 'b'],
[k: 2, n: 'Name2', d1: 'c', d2: 'd'],
[k: 1, n: 'Name3', d1: 'e', d2: 'f'],
[k: 4, n: 'Name4', d1: 'g', d2: 'h']]
    .groupBy { it.k }    
    .collectEntries {k, v ->
        ["$k": v.unique()]
    }    
    .findAll { it.value.size() > 1 } != [:]

// Does not find a match
assert [[k: 2, n: 'Name2', d1: 'c', d2: 'd'],
[k: 1, n: 'Name3', d1: 'e', d2: 'f'],
[k: 4, n: 'Name4', d1: 'g', d2: 'h']]
    .groupBy { it.k }    
    .collectEntries {k, v ->
        ["$k": v.unique()]
    }    
    .findAll { it.value.size() > 1 } == [:]

EDIT

I take that back. n can be compared with unique():

[[k: 1, n: 'Name1', d1: 'a', d2: 'b'],
[k: 2, n: 'Name2', d1: 'c', d2: 'd'],
[k: 1, n: 'Name3', d1: 'e', d2: 'f'],
[k: 4, n: 'Name4', d1: 'g', d2: 'h']]
    .groupBy { it.k }    
    .collectEntries {k, v ->
        ["$k": v.unique { a, b -> (a.k == b.k && a.n == b.n) ? 0 : 1 }]
    }    
    .findAll { it.value.size() > 1 } != [:]

It's amazing what can come out while sitting on the toilet.

0

Yes, Groovy is very groovy indeed, and you can use different methods to achieve same goal.

I'll add groupBy + unique + grep approach. It may be easier to understand.

Basically what you need is do a group by collect / unique to reduce dimension, and then grep by size of collection you get.

def find = { 
    it.groupBy { it.k } // Fold one dimension
        .grep { it.value.size() > 1 } // filter results by that
        .grep { it.value*.n.unique().size() > 1 } // fold and repeat
        .collectEntries() // back to map
}

def listOfMaps = [
    [k: 1, n: 'Name1', d1: 'a', d2: 'b'],
    [k: 2, n: 'Name2', d1: 'c', d2: 'd'],
    [k: 1, n: 'Name3', d1: 'e', d2: 'f'],
    [k: 4, n: 'Name4', d1: 'g', d2: 'h']]


assert find(listOfMaps) == [1: [[k: 1, n: 'Name1', d1: 'a', d2: 'b'], [k: 1, n: 'Name3', d1: 'e', d2: 'f']]]

listOfMaps[2].n = "Name1" // Make them equals.
assert find(listOfMaps) == [:]    

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.