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I have two matrices in Matlab A and B, which have equal number of columns but different number of rows. The number of rows in B is also less than the number of rows in A. B is actually a subset of A.

How can I remove those rows efficiently from A, where the values in columns 1 and 2 of A are equal to the values in columns 1 and 2 of matrix B?

At the moment I'm doing this:

for k = 1:size(B, 1)
     A(find((A(:,1) == B(k,1) & A(:,2) == B(k,2))), :) = [];
end

and Matlab complains that this is inefficient and that I should try to use any, but I'm not sure how to do it with any. Can someone help me out with this? =)

I tried this, but it doesn't work:

A(any(A(:,1) == B(:,1) & A(:,2) == B(:,2), 2), :) = [];

It complains the following:

Error using  == 
Matrix dimensions must agree.

Example of what I want:

enter image description here

enter image description here

A-B in the results means that the rows of B are removed from A. The same goes with A-C.

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1  
setdiff is the best solution but to convert your first try to any (keeping your loop) this is what Matlab is suggesting (you'd actually want all and not any in your case): A(all(A == B(k,:),2), :) = []; –  Dan Jun 19 '14 at 6:36
1  
btw I didn't realize you were only comparing the first two columns so update my last comment to A(all(A(:,1:2) == B(k,1:2),2), :) = []; –  Dan Jun 19 '14 at 6:52
2  
Thank you everybody for your fine answers =) The original running time (with my data) was: 0.198072 seconds. By using the bsxfun approaches I got a running time of approximately 0.007 seconds. By using setdiff(A(:,1:2),B(:,1:2),'rows') I got the running time: 0.004120 seconds. –  jjepsuomi Jun 19 '14 at 6:54
1  
@jjepsuomi Hope you can do some benchmarks on bigger datasizes too, would be interesting to see those results too. –  Divakar Jun 19 '14 at 6:57
1  
+1 @Divakar I will try with different data sets and post my results =) It will take few minutes =) –  jjepsuomi Jun 19 '14 at 6:59

3 Answers 3

up vote 4 down vote accepted

try using setdiff. for example:

c=setdiff(a,b,'rows')

Note, if order is important use:

c = setdiff(a,b,'rows','stable')

Edit: reading the edited question and the comments to this answer, the specific usage of setdiff you look for is (as noticed by Shai):

[temp c] = setdiff(a(:,1:2),b(:,1:2),'rows','stable')
c = a(c,:)

Alternative solution:

you can just use ismember:

a(~ismember(a(:,1:2),b(:,1:2),'rows'),:)
share|improve this answer
3  
+1 But don't you need setdiff(A(:,1:2),B(:,1:2),'rows') instead? –  Divakar Jun 19 '14 at 6:42
1  
When I wrote my answer there was an example in the question of two arrays similar to those in the answer that are now edited out. That what I always write: "for example,..." if you understand the answer you can apply it to the question anyway. –  bla Jun 19 '14 at 7:00
1  
@jjepsuomi Could post back on the screenshot image you had in the post before the edits? –  Divakar Jun 19 '14 at 7:03
1  
from all the mess I thought of an alternative solution with ismember... :) –  bla Jun 19 '14 at 7:17
1  
@natan haha way to avoid the mess! Out of +1s :) –  Divakar Jun 19 '14 at 7:19

Use :

compare = bsxfun( @eq, permute( A(:,1:2), [1 3 2]), permute( B(:,1:2), [3 1 2] ) );
twoEq = all( compare, 3 );
toRemove = any( twoEq, 2 ); 
A( toRemove, : ) = [];

Explaining the code:

First we use bsxfun to compare all pairs of first to column of A and B, resulting with compare of size numRowsA-by-numRowsB-by-2 with true where compare( ii, jj, kk ) = A(ii,kk) == B(jj,kk).
Then we use all to create twoEq of size numRowsA-by-numRowsB where each entry indicates if both corresponding entries of A and B are equal.
Finally, we use any to select rows of A that matches at least one row of B.

What's wrong with original code:

By removing rows of A inside a loop (i.e., A( ... ) = []) you actually resizing A at almost each iteration. See this post on why exactly this is a bad practice.

Using setdiff

In order to use setdiff (as suggested by natan) on only the first two columns you'll need use it's second output argument:

[ignore, ia] = setdiff( A(:,1:2), B(:,1:2), 'rows', 'stable' );
A = A( ia, : ); % keeping only relevant rows, beyond first two columns.
share|improve this answer
    
+1 Thank you for your help! =) –  jjepsuomi Jun 19 '14 at 6:30
    
Appreciate your effort =) Your answer is great! =) –  jjepsuomi Jun 19 '14 at 6:36
1  
@jjepsuomi you are most welcome. –  Shai Jun 19 '14 at 6:37
    
+1 for the setdiff one! –  Divakar Jun 19 '14 at 6:59

Here's another bsxfun implementation -

A(~any(squeeze(all(bsxfun(@eq,A(:,1:2),permute(B(:,1:2),[3 2 1])),2)),2),:)

One more that is dangerously close to Shai's solution, but still avoids two permute to one permute -

A(~any(all(bsxfun(@eq,A(:,1:2),permute(B(:,1:2),[3 2 1])),2),3),:)
share|improve this answer
    
+1 Thank you for your help! =) –  jjepsuomi Jun 19 '14 at 6:46
    
+1 I have a weakness for one liners... –  bla Jun 19 '14 at 7:22
    
@natan haha Thanks and likewise here :) –  Divakar Jun 19 '14 at 7:23
    
@natan haha =D . –  jjepsuomi Jun 19 '14 at 7:24

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