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How can I group nested collections based on column values, which are dynamically given? For example, suppose we have the following nested collections; how can I group it by the values in first and second columns?

[ ["A" 2011 "Dan"] ["A" 2011 "Jon"] ["A" 2010 "Tim"] ["B" 2009 "Tom"] ]

The desired resulting map is:

{ A { 
      2011 [['A', 2011, 'Dan'] ['A', 2011, 'Joe']]
      2010 [['A', 2010, 'Tim']] 
    }
  B { 2009 [['B', 2009, 'Tom']] } 
}

Following is my solution, which almost works:

(defn nest [data criteria]
  (if (empty? criteria)
    data
    (for [[k v] (group-by #(nth % (-> criteria vals first)) data)]
      (hash-map k (nest v (rest criteria))))))
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3 Answers 3

I came up with the following:

user=> (def a [["A" 2011 "Dan"] 
               ["A" 2011 "Jon"] 
               ["A" 2010 "Tim"] 
               ["B" 2009 "Tom"] ])

user=> (into {} (for [[k v] (group-by first a)] 
                  [k (group-by second v)]))

{"A" {2011 [["A" 2011 "Dan"] 
            ["A" 2011 "Jon"]], 
      2010 [["A" 2010 "Tim"]]}, 
 "B" {2009 [["B" 2009 "Tom"]]}}
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What can we do when the criteria is dynamically provided? For instance, what if at runtime the we are provided with a map, i.e. { :date 1 :name 2 } -- which indicates that we want to group based on date and name which are the 2nd and 3rd columns in each nested collection? I've tried to recursively build the nested collection, but I haven't quite figured it out yet. –  Ari Oct 7 '11 at 1:17
    
Change first to #(nth % (:name amap)) and similarly second to #(nth % (:date amap)) –  Jonas Oct 7 '11 at 3:49
up vote 1 down vote accepted

Here's the solution I came up with. It works, but I'm sure it can be improved.

(defn nest [data criteria]
  (if (empty? criteria)
    data
    (into {} (for [[k v] (group-by #(nth % (-> criteria vals first)) data)]
      (hash-map k (nest v (rest criteria)))))))
share|improve this answer
    
I think it is simpler and more correct to use a vector of indices as the criteria instead of a map, seeing we never use the keys, and the vals are not guaranteed to be in order :) –  Timothy Pratley Sep 23 '12 at 18:57

This gets you pretty close

(defn my-group [coll]                                                                                                                                                                                                                       
  (let [m (group-by                                                                                                                                                                                                                         
           #(-> % val first first)                                                                                                                                                                                                          
           (group-by #(second %) coll))]                                                                                                                                                                                                    
    (into {} (for [[k v] m] [k (#(into {} %) v)]))))                                                                                                                                                                                        

(my-group [["A" 2011 "Dan"] ["A" 2011 "Jon"] ["A" 2010 "Tim"] ["B" 2009 "Tom"]])                                                                                                                                                            

{"A" {                                                                                                                                                                                                                                      
      2011 [["A" 2011 "Dan"] ["A" 2011 "Jon"]],                                                                                                                                                                                             
      2010 [["A" 2010 "Tim"]]                                                                                                                                                                                                               
      },                                                                                                                                                                                                                                    
 "B" {2009 [["B" 2009 "Tom"]]}                                                                                                                                                                                                              
}

As usual with Clojure, you can probably find something that is a little less verbose.

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