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I have a vector:

> dput(rn, 20)
c(128L, 241L, 354L, 467L, 580L, 693L, 806L, 919L, 1032L, 1145L, 
1258L, 1371L, 1484L, 1597L, 1710L, 1823L, 1936L, 2049L, 2162L, 
2275L)

How do I get every third record from this vector?

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5 Answers 5

up vote 5 down vote accepted

Use seq to create a sequence of index numbers:

> rn[seq(3, 20, 3)]
[1]  354  693 1032 1371 1710 2049

This works because seq generates the following sequence:

seq(from=3, to=20, by=3)
[1]  3  6  9 12 15 18

More generally, if you don't know the length of your vector in advance, you can calculate it using length:

seq(from=3, to=length(rn), by=3)
[1]  3  6  9 12 15 18

See ?seq for more help.

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Haha... we are definitely in some kind of R-question-answering synchronization. +1 for beating me by a few seconds (and curses upon the 30-char limit)! –  Derrick Turk Oct 18 '11 at 14:13

Let recycling do it's magic.

rn[c(FALSE, FALSE, TRUE)]

though this (and all the other answers, I think) fails with length(rn) < 3. Maybe

rn[3L * seq_len(length(rn)/3L)]
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+1 Very clever... –  Andrie Oct 18 '11 at 15:40
    
Yes, clever indeed! –  jrara Oct 18 '11 at 18:08

rn[seq(3,length(rn),3)] # 30 chars

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milliseconds faster ;) –  EDi Oct 18 '11 at 14:12

Mayby like this?

> x <- c(128L, 241L, 354L, 467L, 580L, 693L, 806L, 919L, 1032L, 1145L, 
+ 1258L, 1371L, 1484L, 1597L, 1710L, 1823L, 1936L, 2049L, 2162L, 
+ 2275L)
> 
> x[seq(3, length(x), 3)]
[1]  354  693 1032 1371 1710 2049
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seq() by itself does nice things: x[seq(x)%%3==0] will do the trick. Technically x[seq_along(x)%%3==0] is faster, but most of the time you won't care.

For example,

> letters[seq(letters)%%3==0]
[1] "c" "f" "i" "l" "o" "r" "u" "x"
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