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Suppose I have the following vector:

> x <- sample(1:10,20,replace=TRUE)
> x
 [1]  8  6  9  9  7  3  2  5  5  1  6  8  5  2  9  3  5 10  8  2

How can I find which elements are either 8 or 9?

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4 Answers

up vote 7 down vote accepted

This is one way to do it. First I get the indices at which x is either 8 or 9. Then we can verify that at those indices, x is indeed 8 and 9.

> inds <- which(x %in% c(8,9))
> inds
[1]  1  3  4 12 15 19
> x[inds]
[1] 8 9 9 8 9 8
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which(x == 8 | x == 9)

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grepl maybe a useful function. Note that grepl appears in versions of R 2.9.0 and later. What's handy about grepl is that it returns a logical vector of the same length as x.

grepl(8, x)
[1] FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE
[13] FALSE FALSE FALSE  TRUE FALSE FALSE FALSE FALSE

grepl(9, x)
[1] FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE  TRUE FALSE
[13] FALSE FALSE FALSE FALSE  TRUE FALSE FALSE  TRUE

To arrive at your answer, you could do the following

grepl(8,x) | grepl(9,x)
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I like grepl as well, great for filtering dataframes on text strings, etc. Thanks for the OR example - I thought it would be that simple, but I kept trying || which is the wrong syntax. –  atomicules Nov 29 '10 at 17:37
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Alternatively, if you do not need to use the indices but just the elements you can do

> x <- sample(1:10,20,replace=TRUE)
> x
 [1]  6  4  7  2  9  3  3  5  4  7  2  1  4  9  1  6 10  4  3 10
> x[8<=x & x<=9]
[1] 9 9
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