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I have two vectors x and y. x is a larger vector compared to y. For example (x is set to all zeros here, but that need not be the case)

x = rep(0,20)
y = c(2,3,-1,-1)

What I want to accomplish is overlay some y's in x but at random. So in the above example, x would look like

0,0,2,3,-1,-1,0,0,0,0,2,3,-1,-1,... 

Basically, I'll step through each value in x, pull a random number, and if that random number is less than some threshold, I want to overlay y for the next 4 places in x unless I've reached the end of x. Would any of the apply functions help? Thanks much in advance.

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Fist: that would not overlay the array. Roman: your solution would bloat up the original array. @Carl: I can't fully understand your approach. After some tinkering, I've reverted to using a loop. –  broccoli Jul 13 '12 at 18:25
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3 Answers 3

A simple way of doing it would be to choose points at random (the same length as x) from the two vectors combined:

sample(c(x, y), length(x), replace = TRUE)

If you want to introduce some probability into it, you could do something like:

p <- c(rep(2, each = length(x)), rep(1, each = length(y)))
sample(c(x, y), length(x), prob = p, replace = TRUE)

This is saying that an x point is twice as likely to be chosen over a y point (change the 2 and 1 in p accordingly for different probabilities).

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Does this guarantee the output vector has same length as input x ? –  Carl Witthoft Jul 13 '12 at 15:40
    
It should with length(x) in sample(). –  Fist Jul 13 '12 at 15:42
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Short answer: yes :-) . Write some function like

ranx <- runif(length(x)-length(y)+1)
# some loop or apply func...
if (ranx[j] < threshold) x[j:j+length(y)] <- y
# and make sure to stop the loop at length(y)-length(x)
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Something like the following worked for me.

i = 1
while(i <= length(x)){
 p.rand = runif(1,0,1)
 if(p.rand < prob[i]){
  p[i:(i+length(y))] = y
  i = i+length(y)
 }
 i = i + 1
}

where prob[i] is some probability vector.

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