Euclidean Distance (Back to the Math...complete with two loops)

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Joe Bannen
Joe Bannen il 20 Mar 2016
Modificato: Joe Bannen il 21 Mar 2016
Hi
Sorry to ask this as it appears to have been asked loads before! I am trying to construct a code with two loops to calculate the Euclidean Distance between elements of two matrices. I have code which uses repmat and avoids loops but now I need to show an element by element calculation.
I seem to be able to do this on a per element basis but I can't figure out how to 'automate' the loops. They need to be left in so that the Mathematics is much clearer.
% Loop Test Script
A=[2 3 4;1 6 5;4 3 1];
B=[5 1 2;3 2 6;8 0 7];
C=zeros(3);
for l=1:3 % rows
for m=1:3 % columns
C(l,m)=sum(A(l,m)-B(l,m)).^2; % Not working!!
end
end
C
Here, element C(2,1) would be (1-5).^2 + (6-1).^2 + (5-2).^2. This is simple to implement in more advanced code.
Any help with keeping the loops and implementing this properly would be most welcome.
Sincerely
Joe

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Roger Stafford
Roger Stafford il 20 Mar 2016
Modificato: Roger Stafford il 20 Mar 2016
Apparently what you want is this:
for l = 1:3
for m = 1:3
C(l,m) = sum((A(l,:)-B(m,:)).^2);
end
end
This would be squared euclidean distance. To get euclidean distance you need to take the square root of the 'C' values. Note that this is what the function 'pdist2' would give you.
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Roger Stafford
Roger Stafford il 20 Mar 2016
Modificato: Roger Stafford il 20 Mar 2016
The code I gave you gives the result you want:
C =
17 6 54
50 21 89
6 27 61
However, if you want Euclidean distance, you must take the square root of each of these values.
Joe Bannen
Joe Bannen il 20 Mar 2016
Modificato: Joe Bannen il 21 Mar 2016
Thanks
This works a treat for different matrices A and B.
It runs into a problem when A=B.
distm returns:
>> A=[2 3 4;1 6 5;4 3 1];
>> distm(A,A)
ans =
0 3.3166 3.6056
3.3166 0 5.8310
3.6056 5.8310 0
But the Loop Test script yields:
C =
0 3 1
3 0 4
1 4 0
Any thoughts?
Best wishes
Joe

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Più risposte (1)

Chad Greene
Chad Greene il 20 Mar 2016
The euclidean distance is a strange term to apply to this particular problem. For each row,column pair you have a value in A and a value in B. For such a one-dimensional problem the euclidean distance is simply
C = abs(A-B)
You're taking the square of a sum of a difference in your calculation. That changes the units, whatever your units are, they become squared the way you're calculating C. Do your A and B matrices represent differences in separate dimensions? If so, perhaps this is what you want:
C = hypot(A,B)
which, if for some reason you need to calculate in a loop, could be done in a loop by
C(l,m) = hypot(A(l,m),B(l,m));
  1 Commento
Joe Bannen
Joe Bannen il 20 Mar 2016
Chad
I am trying to show the explicit calculation and not use any inbuilt code that obscures the mathematics. The hypot code looks like a good compromise though.
This also seems to give incorrect values for the distance matrix which should be (in its squared format):
ans =
17.0000 6.0000 54.0000
50.0000 21.0000 89.0000
6.0000 27.0000 61.0000
Cheers
Joe

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