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I need some help in determining more than one minimum value in a vector. Let's suppose, I have a vector x:

x<-c(1,10,2, 4, 100, 3)

and would like to determine the indexes of the smallest 3 elements, i.e. 1, 2 and 3. I need the indexes of because I will be using the indexes to access the corresponding elements in another vector. Of course, sorting will provide the minimum values but I want to know the indexes of their actual occurrence prior to sorting.

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what have you tried? take a look at sort and order. –  Justin Nov 19 '12 at 17:08
    
How are you deciding that 1, 2, and 3 are the minimums? Are you just more generally asking how to find the index of values that match values in a different vector? Or just how to find the 3 smallest values and their indices? –  Dason Nov 19 '12 at 17:09

4 Answers 4

up vote 7 down vote accepted

In order to find the index try this

which(x %in% sort(x)[1:3])  # this gives you and index vector
[1] 1 3 6

This says that the first, third and sixth elements are the first three lowest values in your vector, to see which values these are try:

x[ which(x %in% sort(x)[1:3])]  # this gives the vector of values
[1] 1 2 3

or just

x[c(1,3,6)]
[1] 1 2 3

If you have any duplicated value you may want to select unique values first and then sort them in order to find the index, just like this (Suggested by @Jeffrey Evans in his answer)

which(x %in% sort(unique(x))[1:3])
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My reading is the OP wants the index –  MattBagg Nov 19 '12 at 17:15
    
@jilber. Thanks alot –  Shahzad Nov 19 '12 at 17:23

You can use unique to account for duplicate minimum values.

x<-c(1,10,2,4,100,3,1)
which(x %in% sort(unique(x))[1:3])
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nice answer. +1 –  Jilber Nov 19 '12 at 17:26

I think you mean you want to know what are the indices of the bottom 3 elements? In that case you want order(x)[1:3]

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Here's another way with rank that includes duplicates.

 x <- c(x, 3)
 # [1]   1  10   2   4 100   3   3
 which(rank(x, ties.method='min') <= 3)
 # [1] 1 3 6 7
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