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I want to assign a defined value (let's say 1) to a random sample of a subset of a vector that meets certain conditions. I can't seem to make it work.

I have tried this code:

a <- c(1:50)
df <- as.data.frame(a)
df$c <- 0 
df$c[sample(x=(df$c[df$a>25]), size = round(NROW(df$c[df$a>25])/5), replace = F)] <- 1

I would like just to randomly make some of the df$c vector values to be equal to 1, exactly a random sample of one fifth of the values in df$c in which value of df$a is a is greater than 25 (that would be 5 observations switched to 1).

But so far all of them remain 0 :/

Thanks!

5

Here's a way with base R -

df$c[sample(which(df$a > 25), sum(df$a > 25)/5)] <- 1

Be aware that this will fail if there is only 1 value in df$a > 25.

Below approach will not fail for any case but is bit verbose. Feel free to use whatever suits your need the best depending on expected values in df$a -

df$c[which(df$a > 25)[sample(length(which(df$a > 25)), sum(df$a > 25)/5)]] <- 1

Also, note that since, relace = F, sample size = sum(df$a > 25)/5 must be <= length(which(df$a > 25)). You can include this condition in your code if you want to make it even more safer.

Also, there will be no change if sum(df$a > 25)/5 < 1 so you may want to use size = max(sum(df$a > 25)/5, 1) if you want at least 1 change.

Here's a nicer version of my first version, thanks to @Frank -

df$c <- replace(df$c, sample(w <- which(df$a > 25), length(w)*.2), 1)
  • 2
    Another way: replace(df$c, sample(w <- which(df$a > 25), length(w)*.2), 1) – Frank Jun 18 at 17:31
  • @Frank Thanks! added to the answer. I guess this one fails too if there is only 1 df$a > 25, right? Basically, sampling will happen from 1:which(df$a > 25) in that case which would be wrong. – Shree Jun 18 at 17:33
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    I don't think there's any issue of failure or incorrect results here actually. If you try with df$a > 49 or df$a > 100 (1 or 0 length which output), df$c is unchanged, which I would think is expected, and there is no error. This is true for all the methods shown in the answer. – IceCreamToucan Jun 18 at 18:01
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    @IceCreamToucan You are right. To generalize, in this specific case, there will be no change if length(which) < 5. OP will have to clarify that for a more refined answer. – Shree Jun 18 at 18:10
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    @JuanC just adding set.seed(x) at the top your code should do it. – Shree Jun 20 at 1:12
1

Not as elegant as the other solution you have but here's another way:

df <- data.frame('a' = c(1:50), 'c' = rep(0,50))

df$c[sample(
  # subset to sample
  df$a[df$a > 25], 
  # sample size
  size = round(length(df$a[df$a > 25])/5, 0), 
  # no replacement 
  replace = F)] <- 1

Yours didn't work because you sample where df$c > 25 rather than df$a

df$c[sample(x=(   df$c   [df$a>25]), size = round(NROW(df$c[df$a>25])/5), replace = F)] <- 1
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    Edited to add why yours didn't work @JuanC – rg255 Jun 18 at 18:24
  • Oh thanks!! You're right, I had to impose the subsetting condition to the same vector df$a for it to work! – Juan C Jun 19 at 15:10

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