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The MATLAB function, pdist, computes pairwise distances for a set of points. In order to save space and time, it elides repeat ( dist(A,B) == dist(B,A) ) and self ( dist(A,A) == 0 ) comparisons. The result is returned in a single vector, with indices [1 2 3 4 5 6 7 8 9 10]. Expanding into a full distance matrix ( e.g. by the function squareform ), the positions are mapped like:

-  -  -  -  -
1  -  -  -  -    # "1" is subscript "1,2"
2  5  -  -  -    
3  6  8  -  -    # "6" is subscript "4,2"
4  7  9  10 -

Given a vector such as that produced by pdist, what is the expression to convert an index into that vector into the subscript indices of the full distance matrix?

For example, I wish to find, in a set of points, the two points most distant from each other:

d = pdist(points); %# points is M x 2 (or 3, etc.), d is described above
N = length(d);
[~,I] = max(d); %# I is the index, e.g. 6
CI = ceil( sqrt( 2*N ) ) - round( sqrt( 2*(1 + N - I) ) ); %# Identity of one point, e.g. 4 is I == 6
RI = ????  %# Identity of second point, e.g. 2, if I == 6 and CI == 4

As indicated above, I have the first part, to find the first subscript. I can't quite figure out the second one. There are a number of related questions (vide infra) but the answers aren't correct (or are specific to 0-index, row-major languages).

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I'm not sure if I fully understand your question, would you be able to rephrase? –  iKiar Nov 15 '11 at 3:25
    
Is it sufficiently explained now? –  reve_etrange Nov 15 '11 at 5:09

2 Answers 2

up vote 3 down vote accepted

@reve_etrange I believe N should be the length of d, not the number of rows of your points matrix.

K=5; % Number of points
d = pdist(rand(K,3));
N = length(d);
m = ceil(sqrt(2*N));
I = 1:N;
CI = m - round( sqrt( 2*(1 + N - I) ) );
RI = mod(I + CI.*(CI+1)/2 - 1, m) + 1;

This results in

I =    1     2     3     4     5     6     7     8     9    10
RI =   2     3     4     5     3     4     5     4     5     5
CI =   1     1     1     1     2     2     2     3     3     4
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Nope. The expression in my answer works with the number of rows in points. Your subs are the same as mine. –  John Colby Nov 15 '11 at 16:19
    
Yep. But I don't have to allocate memory for a N by N matrix. –  kristi Nov 17 '11 at 0:34
    
You're right about N. I fixed it. –  reve_etrange Nov 17 '11 at 0:44

Some parts of the question are still nonsense, but I believe this is what you're trying to do...

Find the subscripts of the nonzero elements of a lower triangular matrix that is the same size as your distance matrix:

>> points = randn(5,2);
>> [i,j] = find(tril(ones(size(points, 1)), -1))

i =

     2
     3
     4
     5
     3
     4
     5
     4
     5
     5


j =

     1
     1
     1
     1
     2
     2
     2
     3
     3
     4
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That works, but has to call find and tril again for every set of points. The correct algebraic expression will definitely use less space and might be faster. Also, please explain why my question is "nonsense," so I can fix it. If you really think the question is irreparable, you should flag it. –  reve_etrange Nov 15 '11 at 9:17
    
The last sentence could be omitted. –  John Colby Nov 15 '11 at 16:21

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