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I'm new to R and have a relatively simple problem that I can't figure out. I have a dataset that is about 30,000 rows and 3 columns. Every 30 rows is one sample, but there is no identifiers for the samples. I want to Rank each of the rows for individual samples (i.e. I need to rank each subset of 30--1:30, then 31:60 then 61:90 and so forth to 30000). I'd like to cbind the output to the original data table. Any simple ways to accomplish this task? Thanks!

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2 Answers 2

To separate these rows, add another column:

dataset$rank <- rep(1:1000, each=30)

For anything more detailed, a bit of detail in the question would be in order.

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+1 - though I wouldn't call that a "rank", more like an "id". I agree we need more detail as to what the OP calls "rank". –  flodel Jun 3 '13 at 23:29
    
Thanks for your input. Here are additional details. I have a three column table mydataset. It is a dataset of 30,000 rows. However, every 30 rows, I change samples. I would like to rank the values (not order them) in column V3 for each sample mydataset$V3 and put that rank in a new column mydataset$V4. This means I would like to perform the rank function on every set of 30 rows. I imagine as a forloop this would rank rows 1-30 exit the loop then perform the same function on the next 30 (rows 31-60). Is this enough information? What else would you like to know? –  user2449619 Jun 3 '13 at 23:40

Sample data:

n <- 3000
df <- data.frame(V1 = runif(n), V2 = runif(n), V3 = runif(n))

How to add a column that computes rank on V3 every 30 rows:

df <- transform(df, rank = ave(V3, (seq_along(V3) - 1) %/% 30, FUN = rank))

You can also break it out a bit if it helps comprehension:

df <- within(df, {ID   = 1 + (seq_along(V3) - 1) %/% 30
                  rank = ave(V3, ID, FUN = rank)})

In this second suggestion, I switched from transform to within as the former does not allow defining variables (rank) in terms of other newly defined variables (ID).

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Complicated but worked great! Thanks! –  user2449619 Jun 4 '13 at 4:02
    
@user2449619, then please consider accepting my answer. Thank you. –  flodel Jun 5 '13 at 10:31

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