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ArrayList<ArrayList<ArrayList<String>>> one = new ArrayList<ArrayList<ArrayList<String>>>();

one would look something like this with some example values:

[  
    [  
        ["A","B","C",...],
        ["G","E","J",...],  
        ...  
    ],
    [ 
        ["1","2",...],
        ["8","5","12","7",...],  
        ...   
    ],  
    ... 
]

Assuming that there will always be one base case, at least one letter arraylist (e.g. ["A","B","C"]), but there could be more (e.g. ["X,"Y","Z"]) and there may be any size of number arraylists, maybe none at all, but could be hundreds (e.g. ["1","2","3"],...,["997","998","999"]). Also, there could be more types of arraylists (e.g. ["@","#","$"]) of any size. So really the only thing that is definitive is that ALWAYS:

one.size()>=1  
one.get(0).size()>=1  
one.get(0).get(0).size()>=1

So the problem is: How can I best get every combination of each category without knowing how large each arraylist will be or having any repeats but assuming that one.get(0).get(0) is valid? e.g. ["A","B","C",...] ["1","2",...] ..., ["A","B","C",...] ["8","5","12","7",...] .... I'm using Java in my project currently but an any algorithm that works I can convert over myself. I apologize if this is not clear, I'm having a hard time putting it into words which is probably part of why I can't think of a solution.

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Are you trying to make a spreadsheet program? What's the larger context, and where are you getting these arrays from that you don't know the dimension or size? –  Marshall Conover Apr 8 '13 at 4:01
1  
If it is a fixed depth then you just need to do simple loops. If you have variable depth the easiest solution is recursion. –  BevynQ Apr 8 '13 at 4:02
    
So, given your example data structure, what is the exact output desired? Can you edit that into your post. –  nickb Apr 8 '13 at 4:14
2  
Duplicate of stackoverflow.com/questions/15868914/… –  Patashu Apr 8 '13 at 4:19
    
If you can declare this: ArrayList<ArrayList<ArrayList<String>>> that means you know the dimension of the array, in this case it is three dimensional array of string, correct me if I am wrong. And what do you mean by all combination? For input 3d array like: [a, b][1, 2, 3][x, y] are you trying to produce this type of output: a1x, a1y, b1x, b1y, a2x, a2y....? –  sowrov Apr 8 '13 at 6:05

1 Answer 1

up vote 1 down vote accepted

I know two solutions to this, the recursive and the non recursive. Here's the non recursive (similar to the answer at How to get 2D array possible combinations )

1) Multiply the length of every array together. This is the number of possible combinations you can make. Call this totalcombinations.

2) Set up an int[] array called counters. It should be as long as the number of arrays, and all initialized to 0.

3a) For totalcombinations times, concatenate counter[0]th entry in arrays[0], the counter[1]th entry in arrays[1]... etc and add it to the list of all results.

3b) Then set j = 0 and increment counters[j]. If this causes counters[j] > arrays[j].length, then counters[j] = 0, ++j and increment the new counters[j] (e.g. repeat 3b)) until you do not get such an overflow.

If you imagine counters as being like the tumblers of a suitcase - when you overflow the first digit from 9 to 0, the next one ticks over - then you should get the strategy here.

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What is arrays in this case? Is this array a new array or the same as the example one 3D arraylist given above? –  Bradley Oesch Apr 11 '13 at 0:07
    
@Bradley Oesch Yeah, it would be one. Also see the answer I linked to in the comments on your question for a similar solution to a similar problem –  Patashu Apr 11 '13 at 0:51
    
Yeah I just finished implementing the algorithm and it seems to work. I'll mark your answer as correct, but maybe you should also add the link to this answer so the correct answer has the algorithm I used. Thanks! –  Bradley Oesch Apr 11 '13 at 0:59
    
@Bradley Oesch I edited it in –  Patashu Apr 11 '13 at 1:31

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