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I'm using Mathematica 7 and with a combinatorica package function I can get all combinations of a certain number from a list of elements where the order doesn't matter and there is no repetition.e.g:

in: KSubsets[{a, b, c, d}, 3]
out: {{a, b, c}, {a, b, d}, {a, c, d}, {b, c, d}}

I cannot find a function that will give me all combinations of a certain number from a list of elements where the order doesn't matter and there is repetition. i.e. the above example would include elements like {a,a,b},{a,a,a},{b,b,b}...etc in the output.

It may require a custom function. If I can come up with one I will post an answer but for now I don't see an obvious solution.

Edit: Ideally the output will not contain duplication of a combination e.g. Tuples[{a, b, c, d}, 3] will return a list that contains two elements like {a,a,b} and {b,a,a} which from a combinations point of view are the same.

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3 Answers 3

up vote 7 down vote accepted
DeleteDuplicates[Map[Sort, Tuples[{a, b, c, d}, 3]]]
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Note that Sort[#]& is the same as just Sort. – dreeves Dec 1 '10 at 15:53
@dreeves -- d'oohhhh -- and edited accordingly. Thankyou. – High Performance Mark Dec 1 '10 at 16:17
Union may be substituted for DeleteDuplicates but to no advantage over the elegant method given. (Subsets is the Mathematica 7 equivalent of KSubsets). Is it possible to do the above without using Map/Sort? – TomD Dec 2 '10 at 10:03
@TomD -- Yes indeed, and my first version used Union, then I discovered DeleteDuplicates in the documentation and its name is more indicative of what it is doing in this case. – High Performance Mark Dec 2 '10 at 11:49

You can encode each combination as {na,nb,nc,nd} where na gives the number of times a appears. The task is then to find all possible combinations of 4 non-negative integers that add up to 3. IntegerPartition gives a fast way to generate all such such combinations where order doesn't matter, and you follow it with Permutations to account for different orders

vars = {a, b, c, d};
len = 3;
coef2vars[lst_] := 
 Join @@ (MapIndexed[Table[vars[[#2[[1]]]], {#1}] &, lst])
coefs = Permutations /@ 
   IntegerPartitions[len, {Length[vars]}, Range[0, len]];
coef2vars /@ Flatten[coefs, 1]

Just for fun, here's timing comparison between IntegerPartitions and Tuples for this task, in log-seconds

approach1[numTypes_, len_] := 
  Union[Sort /@ Tuples[Range[numTypes], len]];
approach2[numTypes_, len_] := 
  Flatten[Permutations /@ 
    IntegerPartitions[len, {numTypes}, Range[0, len]], 1];

plot1 = ListLinePlot[(AbsoluteTiming[approach1[3, #];] // First // 
       Log) & /@ Range[13], PlotStyle -> Red];
plot2 = ListLinePlot[(AbsoluteTiming[approach2[3, #];] // First // 
       Log) & /@ Range[13]];
Show[plot1, plot2]

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Why was this voted down? – Simon Dec 1 '10 at 2:54
looks too complicated perhaps? – Yaroslav Bulatov Dec 1 '10 at 2:56

A slight variant on the elegant method given by High Performance Mark:

Select[Tuples[{a, b, c, d}, 3], OrderedQ]

Permutations is slightly more versatile (but not what you are looking for?)

For example:

  Sort@Flatten@ConstantArray[{a, b, c, d}, {3}], {2, 3}], OrderedQ]

gives the following

alt text


Select[Tuples[Sort@{a, b, d, c}, 3], OrderedQ]

is probably better


Of course, Cases may also be used. For example

  Sort@Flatten@ConstantArray[{a, b, d, c}, {3}], {2, 3}], _?OrderedQ]


The two approaches will differ if the list contains a repeated element. The output from the following (approach 2), for example, will contain duplicates (which may or may not be desired):

Select[Tuples[{a, b, c, d, a}, 3], OrderedQ]

They may easily be got rid of:

Union@Select[Tuples[{a, b, c, d, a}, 3], OrderedQ]

The following evaluates to 'True' (remove duplicate elements from the list presented to approach 2, and Sort the list produced by approach 1 (High Performance Mark method):

lst = RandomInteger[9, 50]; 
Select[Union@Sort@Tuples[lst, 3], OrderedQ] == 
 Sort@DeleteDuplicates[Map[Sort, Tuples[lst, 3]]]

as does the following (remove duplicates from output of approach 2, Sort output of approach 1):

lst = RandomInteger[9, 50]; 
Union@Select[Sort@Tuples[lst, 3], OrderedQ] == 
 Sort@DeleteDuplicates[Map[Sort, Tuples[lst, 3]]]

Sorry about that!

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You can do away with Sort if you do Select[#,OrderedQ] – Yaroslav Bulatov Dec 3 '10 at 17:59

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