21

There are several posts on computing pairwise differences among vectors, but I cannot find how to compute all differences within a vector.

Say I have a vector, v.

v<-c(1:4)

I would like to generate a second vector that is the absolute value of all pairwise differences within the vector. Similar to:

abs(1-2) = 1
abs(1-3) = 2
abs(1-4) = 3
abs(2-3) = 1
abs(2-4) = 2
abs(3-4) = 1

The output would be a vector of 6 values, which are the result of my 6 comparisons:

output<- c(1,2,3,1,2,1)

Is there a function in R that can do this?

0

3 Answers 3

23
as.numeric(dist(v))

seems to work; it treats v as a column matrix and computes the Euclidean distance between rows, which in this case is sqrt((x-y)^2)=abs(x-y)

If we're golfing, then I'll offer c(dist(v)), which is equivalent and which I'm guessing will be unbeatable.

@AndreyShabalin makes the good point that using method="manhattan" will probably be slightly more efficient since it avoids the squaring/square-rooting stuff.

2
  • 3
    To avoid square roots you could use another metric: as.vector(dist(v, method = "manhattan")). Jun 19, 2014 at 19:41
  • Hmm, something was borked. Somehow the solution was off by a factor of 100.
    – Vlo
    Jun 19, 2014 at 19:53
16

A possible solution is:

z = outer(v,v,'-'); 
z[lower.tri(z)];

[1] 1 2 3 1 2 1
2
  • 3
    semicolons are unnecessary, and mildly inefficient (full matrix is computed) but otherwise very nice.
    – Ben Bolker
    Jun 19, 2014 at 19:37
  • I had sapply(v, "-", v) before looking here. outer is nice!
    – PatrickT
    Dec 10, 2018 at 14:50
16

Let's play golf

abs(apply(combn(1:4,2), 2, diff))

@Ben, yours is a killer!

> system.time(apply(combn(1:1000,2), 2, diff))
   user  system elapsed 
   6.65    0.00    6.67 
> system.time(c(dist(1:1000)))
   user  system elapsed 
   0.02    0.00    0.01 
> system.time({
+ v <- 1:1000
+ z = outer(v,v,'-');
+ z[lower.tri(z)];
+ })
   user  system elapsed 
   0.03    0.00    0.03 

Who knew that elegant (read understandable/flexible) code can be so slow.

7
  • 3
    can you beat c(dist(v)) (10 characters) ? (yours could be slightly shorter if you substitute v for 1:4)
    – Ben Bolker
    Jun 19, 2014 at 19:47
  • Huh! I thought @BenBolker would win the tournament. I'd assume my example introduces 3 commonly used functions in one line as a bonus.
    – mlt
    Jun 19, 2014 at 19:56
  • They both work well. I accepted this answer because I could understand what was going on more clearly. Furthermore, I can easily modify this code to do other pairwise operation (i.e. compute pairwise sums for the same vector). I can't do that with the dist() function.
    – colin
    Jun 19, 2014 at 20:03
  • 1
    we could all switch to Julia :-)
    – Ben Bolker
    Jun 19, 2014 at 20:28
  • 5
    +1 combn has a FUN argument, so you could just do: combn(v,2,FUN=diff) Jun 19, 2014 at 20:38

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.