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I have a vector A which contains zeros and ones. I would like to randomly change n percent of the ones to zero. Is this the best way to do it in R (10% change):

for (i in 1:length(A)) 
{
    if(A[i] > 0)
    {
        if(runif(1) <= 0.1)
        {
            A[i] = 0
        }
    }
}

Thanks.

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1  
That code doesn't randomly change 10% of 1s. It changes a randomly distributed number of 1s. –  hadley Dec 2 '11 at 13:02
    
Why not? If it encounters a one it generates a uniformly distributed number between [0 ... 1] and if this number is less equal 0.1 it changes the 1 to a zero. This occurs 1 out of 10 times on average. –  csetzkorn Dec 2 '11 at 13:20
    
possible duplicate of randomly select values those are not NA in R –  Richie Cotton Dec 2 '11 at 13:33
    
@csetzkorn As you mentioned, you change 10% of values on average. However, this is different from randomly changing exactly 10%. For you, suppose you have ten ones. You could select exactly one value at random and change that to a zero, or you could do as you describe above. –  csgillespie Dec 2 '11 at 13:37
    
Ok I got it - changing exactly 10% randomly selected rows with ones is much better anyway! –  csetzkorn Dec 2 '11 at 13:47

3 Answers 3

up vote 1 down vote accepted

You can do this without using the for loops and if statements:

##Generate some data
R> A = sample(0:1, 100, replace=TRUE)
##Generate n U(0,1) random numbers
##If any of the U's are less then 0.1
##Set the corresponding value in A to 0
R> A[runif(length(A)) < 0.1] = 0

The other point to note, is that you don't have to do anything special for values of A that actually equal 0, as the probability of change a 1 to a 0 is still 0.1.

As Hadley points out, your code doesn't randomly change 10% of 1's to 0. If that is really your intention, then:

##Select the rows in A equal to 1
R> rows_with_1 = (1:length(A))[A==1]
##Randomly select a % of these rows and set equal to zero
##Warning: there will likely be some rounding here
R> A[sample(rows_with_1, length(rows_with_1)*0.1)] = 0
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You have a parens in the wrong place. –  hadley Dec 2 '11 at 13:03
    
@Hadley Thanks. –  csgillespie Dec 2 '11 at 13:04
    
Thanks. This all looks great. Can you please explain why I do not swap 10% of my 1s to 0s in my original code? runif(1) gives me uniformly distributed number from [0 ... 1] doesn't it? That means that the second 'if construct' is entered 10% of the time on average ... in other words a one is swapped 10% of the time to a zero. –  csetzkorn Dec 2 '11 at 13:39

If this is your A:

A <- round(rnorm(100, 0.5, 0.1))

This should do it:

n <- 10
A[sample(A[A==1], length(A[A==1])*n/100)] <- 0

where n is the percentage of your 1s that you want to change to 0s.

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You can vectorize that:

A <- round(runif(20), 0)
A[sample(which(A == 1), 0.1 * length(A == 1))] <- 0

HTH

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Why the negative vote? –  Luciano Selzer Dec 2 '11 at 13:06
    
Worth noting that if 0.1 * length(A == 1) is a non-integer, then sample will take the floor of that number. It's not obvious from the question where or not @csetzkorn wants that behaviour, though it's only an issue for small datasets. –  Richie Cotton Dec 2 '11 at 13:38

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