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Say I applied the cut function on seq(15) like this cut(seq(15), 5)

I would get a list of bins in which each element would fall. What if I want to extract the members or elements of the third level? How can I refer to the elements that would fall in the 3rd bin after cutting the sequence?

Addressing Arun's comment:I will provide the cut function a vector like this: temp <- cut(seq(15), c(.9,4,8,12,15)). I am looking for the elements of the seq(15) that would fall in the 3rd level. They are 9,10,11,12. There is already an answer that worked bellow.

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Welcome to stackoverflow. Please take 5 minutes to read this stackoverflow articleon how to write good question that gets answered. The pullets are, do your homework, be specific, make it relevant to others, and so forth. Also always good to include reproducible code. –  Eric Fail Feb 12 '13 at 19:15
    
It'd be useful if you could write the output you seek, since it is not quite clear to me from what you've written as to what you mean... –  Arun Feb 12 '13 at 20:58
    
How did the answers below work out for you? Do consider upvoting or accepting answers that you found helpful or which solved your problem. Thanks. –  Ananda Mahto Feb 18 '13 at 8:28
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2 Answers 2

up vote 2 down vote accepted

Your question is poorly worded and somewhat ambiguous, but can use basic indexing for this:

temp <- cut(seq(15), 5)
temp[temp == levels(temp)[3]]
# [1] (6.6,9.4] (6.6,9.4] (6.6,9.4]
# Levels: (0.986,3.79] (3.79,6.6] (6.6,9.4] (9.4,12.2] (12.2,15]

Or, if you wanted the relevant values from seq(15):

seq(15)[temp == levels(temp)[3]]
# [1] 7 8 9
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this code worked, thanks –  user2004820 Feb 12 '13 at 20:17
    
That will bring in all of the NA values as well. Could also use which(temp)==levels(temp)[3] as the index. –  BondedDust Feb 12 '13 at 20:55
    
seq(15)[temp == levels(temp)[3]] this worked fine, but what if I wanted to select more than one levels elements. Like all three last levels. I tried seq(15)[temp == levels(temp)[3:5]] but it didn't work? –  user2004820 Feb 12 '13 at 21:20
    
@user2004820 you would have to replace == by %in% –  adibender Feb 12 '13 at 22:05
    
thanks adibender –  user2004820 Feb 12 '13 at 22:49
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You can use labels=F to get

 cut(seq(15),5,labels=F)
[1] 1 1 1 2 2 2 3 3 3 4 4 4 5 5 5

Then

x <- seq(15)
> x[cut(x,5,labels=F)==3]
[1] 7 8 9
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+1 Good use of labels = FALSE –  Ananda Mahto Feb 12 '13 at 19:18
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