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I have been looking through the Java Tutorials at the Interfaces tutorial, specifically on Collections (Set, List, Queue, etc.) and I came across the fact that a Set cannot contain duplicates in its elements.

My problem is the fact that I do not fully understand how to create a set of a multi-dimensional array of an unknown size.

In order to fill the multi-dimensional array, I will be placing 1's and 0's inside of an array so that each one will look like the following: (if it fits the criteria I am looking for)

[ 0  1  1  0
  0  1  1  0
  0  1  0  0
  0  1  0  0
  0  0  0  0 ]

Or something of that nature. I would like to think this can be accomplished through declaring an multi-dimensional array like:

int[][] array = new int[5][];

Yet I cannot understand how that would work with filling multiple array elements or how to accomplish this with a set.

Please let me know if this is not clear enough.

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1  
List can contain duplicates; it's Set whose values are unique. –  kyle_wm Feb 18 '12 at 0:39
    
Thank you for letting me know, @KyleMahan. I have reflected this in my edit. –  nmagerko Feb 18 '12 at 0:41
    
You're welcome, but you can use List instead of Set. List<List<Integer>> is one way to represent a matrix where neither dimension's magnitude is known in advance. Keep in mind that with List<List> and with int[][], there is nothing that inherently prevents the first row from having 10 numbers, and the second row from having 9. –  kyle_wm Feb 18 '12 at 0:48
    
I understand, yet I cannot have duplicates of matrices in the problem that I am solving. Am using Set correctly in this way? –  nmagerko Feb 18 '12 at 0:57

1 Answer 1

up vote 2 down vote accepted

List's can contain duplicates, sets cannot. You can declare a (dynamic) multidimensional structure in several ways, heres one:

List<List<Integer>> multiDimensional = new ArrayList<List<Integer>>();
List<Integer> row = Arrays.asList({0, 1, 1, 0});
multiDimensional.add(row);

And so on and so forth. To access the elements of the list utilize the get method in a way similar to what you would do with arrays:

Integer someVal = multiDimensional.get(0).get(3);

Having said that, you only need to use this nested List setup if your multidimensional structure needs to be 100% dynamic, aka you need the ability to grow the rows and columns constantly throughout the execution of your logic. You can actually use an ordinary array for your multidimensional structure, assuming that the number of rows can be determined ahead of time, and that each row's length will not change after that row has been initialized. Case in point:

int[][] multiDimensional = null;

int rows = ... ;// Determine number of rows
multiDimensional = new int[rows][];

for(final int[] row: multiDimensional) {
    final int cols = ...; // Determine number of cols for this row
    row = new int[cols];
}

And you access the elements with your usual array semantics (multiDimensional[0][3]).

share|improve this answer
    
Would I be able to find the first element in row in this way? I do not understand how that could be done. –  nmagerko Feb 18 '12 at 0:49
    
Sure, just use the get method on the List class. See edit to my answer. –  Perception Feb 18 '12 at 1:07
    
Awesome. Thank you. –  nmagerko Feb 18 '12 at 1:41

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