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[Note, I wrote out this question, then found an answer. I thought maybe someone else would like to know it, so I'm posting the answer just in case. I'm not sure if this is the "done thing"].

Suppose I want the signed distance matrix of a vector, i.e. the distance's aren't always positive, but can be negative. You can't use


because it returns absolute values.

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2 Answers 2

up vote 1 down vote accepted

Here's another approach, which is much faster and needs less memory:

y <- sample (1 : 4)
distmat <- outer (y, y, `-`) 


> distmat
     [,1] [,2] [,3] [,4]  
[1,]    0    1    3    2  
[2,]   -1    0    2    1  
[3,]   -3   -2    0   -1  
[4,]   -2   -1    1    0

## not sure why you want the upper triangular NA

but you possibly want:

> as.dist (distmat)
   1  2  3
2 -1      
3 -3 -2   
4 -2 -1  1
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Use apply:

distmat<,1,function(x) y-x))
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you can get distmat as replicate(length(y), y) - t(replicate(length(y), y)) as well. – Arun Feb 19 '13 at 16:03
Also, the result you've produced here can be obtained by dist(1:10, method="manhattan") – Arun Feb 19 '13 at 16:05
Just hoping you are intending to use the definition of signed distance as in , in which case it's not really clear what your interior/exterior is. Let's be clear: "Distance" is by strict definition nonnegative. Are you looking for what's essentially vector locations (e.g. a point at (-3,-2) which has euclidean distance sqrt(3^2 + 2^2) from the origin) ? – Carl Witthoft Feb 19 '13 at 16:25
@Arun, but the OP specifically asked for the possibility to get negative distances, which method = "manhattan" does not fulfill (the example is bad in that it doesn't show this requirement. – cbeleites Feb 19 '13 at 16:50
@cbeleites, yes, I understand, but the final result removes the negative values. That's why I mentioned, "the results you've produced here"... it should probably have been distmat[lower.tri(distmat, diag=TRUE)] <- NA instead. – Arun Feb 19 '13 at 16:51

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