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Is there a more elegant way to do this? a and b run in parallel, c and d form a cartesian product

a <- c("a","b","c")
b <- c("A","B","C")
c <- c(1,2,3)
d <- c(11,22)
nrow_cd <- length(c)*length(d)
nrow_abcd <- length(a)*nrow_cd
abcd <- data.frame(
    a=rep(a, each=nrow_cd),
    b=rep(b, each=nrow_cd),
    c=rep(c, each=length(d)),
    d=rep(d, times=nrow_abcd)
)    

abcd
   a b c  d
1  a A 1 11
2  a A 1 22
3  a A 2 11
4  a A 2 22
5  a A 3 11
6  a A 3 22
7  b B 1 11
8  b B 1 22
9  b B 2 11
10 b B 2 22
11 b B 3 11
12 b B 3 22
13 c C 1 11
14 c C 1 22
15 c C 2 11
16 c C 2 22
17 c C 3 11
18 c C 3 22
19 a A 1 11
20 a A 1 22
21 a A 2 11
22 a A 2 22
23 a A 3 11
24 a A 3 22
25 b B 1 11
26 b B 1 22
27 b B 2 11
28 b B 2 22
29 b B 3 11
30 b B 3 22
31 c C 1 11
32 c C 1 22
33 c C 2 11
34 c C 2 22
35 c C 3 11
36 c C 3 22
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2 Answers 2

up vote 4 down vote accepted

You can do this:

bcd  <- rev(expand.grid(list(d=d,c=c,b=b)))
abcd <- data.frame(a = a[match(bcd$b, b)], bcd)

It gives you 18 rows i.e. length(b)*length(c)*length(d). I am not sure if you meant to have duplicates in your examples. If it is the case, just add:

abcd <- rbind(abcd, abcd)
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Nice clean solution, great stuff. +1 –  Tim P Jun 10 '12 at 0:32

Did you mean to intentionally double your dataframe? Rows 1:18 are identical to rows 19:36...

Here's one solution

a <- c("a","b","c")
b <- c("A","B","C")
c <- c(1,2,3)
d <- c(11,22)
nrow_cd <- length(c)*length(d)

ab <- sapply(list(a,b), rep, each=nrow_cd)
cd <- expand.grid(c,d)
out <- cbind(ab, cd[rep(rownames(cd),length=nrow(ab)),])
rownames(out) <- 1:nrow(out)
names(out ) <- letters[1:4]
out
share|improve this answer
    
awesome, thanks –  nachocab Jun 9 '12 at 22:40

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