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I want to interlace two vectors of same mode and equal length. Say:

a <- rpois(lambda=3,n=5e5)
b <- rpois(lambda=4,n=5e5)

I would like to interweave or interlace these two vectors, to create a vector that would be equivalently c(a[1],b[1],a[2],b[2],...,a[length(a)],b[length(b)])

My first attempt was this:

sapply(X=rep.int(c(3,4),times=5e5),FUN=rpois,n=1)

but it requires rpois to be called far more times than needed.

My best attempt so far has been to transform it into a matrix and reconvert back into a vector:

d <- c(rbind(rpois(lambda=3,n=5e5),rpois(lambda=4,n=5e5)))
d <- c(rbind(a,b))

Is there a better way to go about doing it? Or is there a function in base R that accomplishes the same thing?

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Can you please remove the elements of answer from the question? It gets too confusing if you answer your own question in the question. You can edit the answer of @benbolker, or you can post a new answer. –  Andrie Aug 20 '12 at 20:57
    
@Andrie Done. Sorry about that. –  Blue Magister Aug 20 '12 at 22:54
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2 Answers

up vote 7 down vote accepted

Your rbind method should work well. You could also use

rpois(lambda=c(3,4),n=1e6)

because R will automatically replicate the vector of lambda values to the required length. There's not much difference in speed:

library(rbenchmark)
benchmark(rpois(1e6,c(3,4)),
     c(rbind(rpois(5e5,3),rpois(5e5,4))))


#                                        test replications elapsed relative
# 2 c(rbind(rpois(5e+05, 3), rpois(5e+05, 4)))          100  23.390 1.112168
# 1                      rpois(1e+06, c(3, 4))          100  21.031 1.000000

and elegance is in the eye of the beholder ... of course, the c(rbind(...)) method works in general for constructing alternating vectors, while the other solution is specific to rpois or other functions that replicate their arguments in that way.

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Oh wow, that never occurred to me. I have a ways to go before I 'think in R'. Thanks! –  Blue Magister Aug 20 '12 at 20:42
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Some speed tests, incorporating Ben Bolker's answer:

> benchmark(
+ c(rbind(rpois(lambda=3,n=5e5),rpois(lambda=4,n=5e5))),
+ c(t(sapply(X=list(3,4),FUN=rpois,n=5e5))),
+ sapply(X=rep.int(c(3,4),times=5e5),FUN=rpois,n=1),
+ rpois(lambda=c(3,4),n=1e6),
+ rpois(lambda=rep.int(c(3,4),times=5e5),n=1e6)
+ )
                                                                  test
1 c(rbind(rpois(lambda = 3, n = 5e+05), rpois(lambda = 4, n = 5e+05)))
2                 c(t(sapply(X = list(3, 4), FUN = rpois, n = 5e+05)))
4                                   rpois(lambda = c(3, 4), n = 1e+06)
5           rpois(lambda = rep.int(c(3, 4), times = 5e+05), n = 1e+06)
3      sapply(X = rep.int(c(3, 4), times = 5e+05), FUN = rpois, n = 1)
  replications elapsed   relative user.self sys.self user.child sys.child
1          100    6.14   1.000000      5.93     0.15         NA        NA
2          100    7.11   1.157980      7.02     0.02         NA        NA
4          100   14.09   2.294788     13.61     0.05         NA        NA
5          100   14.24   2.319218     13.73     0.21         NA        NA
3          100  700.84 114.143322    683.51     0.50         NA        NA
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