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Let r = c(0,1,2) and s = c(0,5,10). I want a function that can take r and s (eventually will take more than two sequences - I want to avoid loops if possible!), and return an ordered list of all unique combinations of sums of elements in r and s, i.e., return the following:

0,1,2,5,6,7,10,11,12

Thanks!

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2 Answers 2

up vote 1 down vote accepted

Similar concept as @Didzis but using outer with Reduce instead:

as.vector(Reduce(function(x, y) outer(x, y, '+'), list(r, s, k)))
#  [1]  3  4  5  8  9 10 13 14 15  4  5  6  9 10 11 14 15 16  6  7  8 11 12 13 16 17 18

wrap it with a sort if necessary.


Small benchmarking:

w <- sample(50)
x <- sample(50)
y <- sample(50)
z <- sample(30)

# arun's 
system.time(t1 <- as.vector(Reduce(function(x, y) outer(x, y, '+'), list(w, x, y, z))))
#    user  system elapsed 
#   0.051   0.044   0.100 

# Didzis'
system.time(t2 <- rowSums(expand.grid(w, x, y, z)))
#    user  system elapsed 
#   1.167   0.308   1.579 

identical(as.numeric(t1), t2)
[1] TRUE
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Thanks so much to both of you - very helpful! –  Joe Rigdon Apr 18 '13 at 15:47
    
alternatively, you can move the as.vector part inside the function as: function(x, y) as.vector(outer(x, y, '+')) so that the result after each reduce operation is a vector (if you don't want to keep higher dimensional arrays until the end and coerce them to a vector. You may want to test it. –  Arun Apr 18 '13 at 16:01

You can combine functions expand.grid() and rowSums(). expand.grid() will make data frame of all combinations and rowSums() will calculate sums for those combinations.

r = c(0,1,2)
s = c(0,5,10)
rowSums(expand.grid(r,s))
[1]  0  1  2  5  6  7 10 11 12

With function sort() you can get values sorted.

r = c(0,1,2)
s = c(0,5,10)
k=c(3,4,6)
rowSums(expand.grid(r,s,k))
 [1]  3  4  5  8  9 10 13 14 15  4  5  6  9 10 11 14 15 16  6  7  8 11 12 13 16 17 18
sort(rowSums(expand.grid(r,s,k)))
 [1]  3  4  4  5  5  6  6  7  8  8  9  9 10 10 11 11 12 13 13 14 14 15 15 16 16 17 18
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expand.grid gives a data.frame and rowSums coerces it to a matrix before summing. That's why I guess the run time is much different from using outer. –  Arun Apr 18 '13 at 8:33

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