1

I will try to explain what I need through an example.

Suppose you have a matrix x as follows:

1 2 3
4 5 6

And another matrix y as follows:

1 4 5
7 4 8

What I need is (without looping over the rows) to perform an intersection between each 2 corresponding rows in x & y. So I wish to get a matrix z as follows:

1
4

The 1st rows in x and y only have 1 as the common value. The 2nd rows have 4 as the common value.

EDIT: I forgot to add that in my case, it is guaranteed that the intersection results will have the same length and the length is always 1 actually.

2
  • 2
    What happens when you have two common values in one row? I think the matrix result idea is not appropriate for results... – user2271770 Nov 5 '15 at 18:32
  • In my case, it guaranteed that the intersection results will have the same length and the length is always 1 actually. Thanks for the comment I should add that to the question – Kareem Ergawy Nov 5 '15 at 18:33
4

I am thinking bsxfun -

y(squeeze(any(bsxfun(@eq,x,permute(y,[1 3 2])),2)))

Sample runs -

Run #1:

>> x
x =
     1     2     3
     4     5     6
>> y
y =
     1     4     5
     7     4     8
>> y(squeeze(any(bsxfun(@eq,x,permute(y,[1 3 2])),2)))
ans =
     1
     4

Run #2:

>> x
x =
     3     5     7     9
     2     7     9     0
>> y
y =
     6     4     3
     6     0     2
>> y(squeeze(any(bsxfun(@eq,x,permute(y,[1 3 2])),2)))
ans =
     0
     3
     2
2
  • @rayryeng Well, sorry I guess! ;) – Divakar Nov 5 '15 at 18:56
  • 2
    @rayryeng haha, when it comes to using bsxfun, I am never sorry :D – Divakar Nov 5 '15 at 19:05
0

The idea is to put the matrices together and to look for duplicates in the rows. One idea to find duplicated numeric values is to diff them; the duplicates will be marked by the value 0 in result.

Which leads to:

%'Initial data'
A = [1 2 3; 8 5 6];
B = [1 4 5; 7 4 8]; 

%'Look in merged data'
V = sort([A,B],2);      %'Sort matrix values in rows'
R = V(diff(V,1,2)==0);  %'Find duplicates in rows'

This should work with any number of matrices that can be concatenated horizontally. It will detect all the duplicates, but it will return a column the same size as the number of rows only if there is one and only one duplicate per row in the matrices.

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