Replacing values for matrices of different dimension

1 view (last 30 days)
RDG
RDG on 12 Sep 2013
Suppose,
A= [15 1 4 2 65
15 2 4 6 65
17 6 5 2 65
24 5 3 1 55
24 5 5 3 55
25 2 1 1 55
30 2 1 1 20
31 5 2 2 11
31 5 3 5 11
33 3 2 2 31
33 4 5 3 31
57 3 2 4 2
58 4 5 5 2];
B= [1 1 1
1 1 5
1 1 6
1 2 3
1 3 2
2 1 4
2 1 6
2 2 2
2 2 5
2 3 2
3 1 6
3 2 1
3 2 6
3 3 3
3 3 4
3 3 5
3 4 2
3 4 3
3 4 4
3 4 5
4 1 1
4 2 1
4 2 3
4 2 4
4 2 5
4 3 6
4 6 6
5 1 1
5 1 2
5 1 3
5 1 4
5 1 5
5 4 3
5 5 1
5 6 6
6 1 2
6 1 4
6 1 6
6 2 1
6 2 2
6 2 3];
Both A and B are matrices of different dimensions. I would like to substitute the values in A(:,2:4) with values from B(:,1:3) based on A(column 2).
Resultant (Something like this):
Resultant=[ 15 1 1 1 65
15 2 1 4 65
17 6 1 2 65
24 5 1 1 55
24 5 5 3 55
25 5 1 2 55
30 2 1 6 20
31 5 1 3 11
31 5 1 4 11
33 3 1 6 31
33 4 1 1 31
57 3 2 1 2
58 4 2 1 2];
  2 Comments
Walter Roberson
Walter Roberson on 12 Sep 2013
What is the rule? That when you encounter N in the second column of A, that you do a replacement in columns 2:4 with the first "unused" line in B that has the same value N in the first column? So the first 6 in A(:,2) is matched with the first 6 in B(:,1), the second 6 in A(:,2) is matched with the second 6 in B(:,1) and so on ?
RDG
RDG on 12 Sep 2013
Sorry for the late reply. Yes, you're correct.

Sign in to comment.

Sign in to answer this question.

Accepted Answer

Andrei Bobrov
Andrei Bobrov on 12 Sep 2013
Edited: Andrei Bobrov on 12 Sep 2013
[a,ia0] = sort(A(:,2));
ba = histc(a,unique(a));
t1 = [true;diff(B(:,1))~=0] + 0;
t1(find(t1) + ba)= -1;
t3 = cumsum(t1);
[ii,ii] = sort(ia0);
b = B(t3>0,:);
out = A;
out(:,2:4) = b(ii,:);
or
[ba,i00] = histc(A(:,2),unique(A(:,2)));
out = A;
for jj = 1:numel(ba)
t = find(B(:,1) == jj);
out(i00 == jj,2:4) = B(t(1:ba(jj)),:);
end

More Answers (0)

Categories

Find more on Matrices and Arrays in Help Center and File Exchange

Tags

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!