How to combine vectors based on value?
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Good Afternoon,
Another quick question. Say I have a matrix,
B = [732145 732151 732168 0 0 0 0
284 281 297 0 0 0 0]
and
C =
[ 0 281 284 0 0 297 0
0 0 0 0 0 0 0]
I am trying to get it so that I have:
D = [0 281 284 0 0 297 0
0 732151 732145 0 0 732168 0].
Should I be using the [r c] kind of terminology. I keep almost getting there, I think, then I get confused.
Any thoughts would be greatly appreciated! or reading!
Thank you very much for any time!
Réponses (3)
Guillaume
le 16 Oct 2015
Regarding your latest comment, a much simpler way of obtaining your D result, assumming that elements of B and C are uniques is:
assert(numel(unique(C)) == numel(C) && numel(unique(B)) == numel(B)); %does not work if elements are not unique
[values, ic, ib] = intersect(C, B);
D = zeros(numel(C), numel(B));
D(sub2ind(size(D), ic, ib)) = values;
If the values of B and C are not unique, you need an additional level of indirection through unique.
1 commentaire
Chameleon17
le 16 Oct 2015
Andrei Bobrov
le 16 Oct 2015
B = [4 5 6 7; 0 0 0 0; 0 0 0 0; 0 0 0 0];
C = [0; 5; 4];
D = B;
[ll,idx] = ismember(B(1,:),C);
D(sub2ind(size(D),1+idx(ll),find(ll))) = C(idx(ll));
Geoff Hayes
le 14 Oct 2015
Do you wish to simply iterate over each element in the first row of C and, for those that are non-zero, check to see if it exists in the second row of matrix B and copy the the value from its first row into D? If so, try the following
D = C;
for k=1:size(C,2)
if C(1,k) ~= 0
[idx] = find(B(2,:)==C(1,k));
if ~isempty(idx)
D(2,k) = B(1,idx);
end
end
end
In the above, we just iterate over each column in the first row of C. If the element is non-zero then we use find to find that element of the second row of B that matches the value in C. If the returned index, idx, is non-empty then we set this value to the corresponding element of D.
5 commentaires
Chameleon17
le 15 Oct 2015
Geoff Hayes
le 15 Oct 2015
First you need to define the rules or steps on how you start with B and C and get to D. What are the steps? Once you know what they are, you should be able code it up. (I'm asking only because it isn't clear to me how D is created. Why is 5 in the second element of the third row of D? Why is 4 in the first element of the last row of D?)
Chameleon17
le 16 Oct 2015
Modifié(e) : Guillaume
le 16 Oct 2015
I assume you've made a typo and that the for loops are actually:
for h = 1:g
for m = 1:k
Chameleon17
le 16 Oct 2015
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