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I have a vector 'a' that is a numerical vector of row indices. I'd like to get these rows as well as the next 20 rows next to them out of a dataframe called 'data'. Is there a way to do this?

I've already tried:
data2 <- data[a:a+20,] but without success.

If a <- c(1, 21, 42) I'd like to extract rows 1:20, 21:41, and 42:62 from 'data' and store them in another object.

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  • data2 <- data[-a,] ? Your question isn't very clear. What do you expect the final dataframe to look like? Are you trying to get a single dataframe or a list of three dataframes? An actual example (perhaps using a built-in dataset like trees) would help. Jul 21, 2019 at 0:37
  • Sorry I wasn't clear. I want actually a single dataframe rowbind of 1:20, 21:41, 31:41 (but with values specified by values in the vector a). The end result is basically a subset of the original dataframe.
    – bactro
    Jul 21, 2019 at 0:45
  • How do you get from c(1,21,31) to 1:20, 21:41, 31:41? For one thing, where did 41 come from? Furthermore, wouldn't 1:20, 21:41, 31:41 duplicate the rows in 31:41, making the resulting dataframe no longer a subset? Jul 21, 2019 at 0:47
  • I edited my question to fix that, my mistake. What I mean was, I have a vector of single numeric values (these values represent rows in a dataframe, ex. 1 represents row 1, 21 represents row 21 etc.) I want to take this vector, add 20 to the values, and extract ALL those rows from the dataset. Hope this was clearer. Thanks!
    – bactro
    Jul 21, 2019 at 0:58
  • Why not data[1:62, ]? Or if you have a vector, data[min(a):max(a), ].
    – Cole
    Jul 21, 2019 at 1:08

3 Answers 3

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Here is another way from base without fancy functions and for loops:

data2 <- data[rep(a, each = 21) + 0:20,]
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  • IMHO this is absolutely preferable to doing *apply statements. Jul 21, 2019 at 5:17
  • The point of this question now appears to be to show people, what is the effect of learning complicated things on the way they do simple things. Jul 21, 2019 at 5:30
  • I agree that this answer is preferable and hope that OP accepts it instead. Jul 21, 2019 at 20:07
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If I understand you, the following should work:

do.call("rbind",lapply(a,function(i) data[i:(i+20),]))

See this question about how to convert a list of dataframes to a singe dataframe (which is the least intuitive part of my answer). The answers to that question give ways more intuitive than do.call(), but require going beyond base R.

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  • @bactro This was the first thing that I thought of, but I think that the solution of Grada Gukovic is superior. Consider accepting their answer rather than mine. Jul 21, 2019 at 20:06
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Here's a way using Map from base R -

data[unlist(Map(`:`, a, a+20)), ]

Or with sapply (similar to John's answer) -

data[c(sapply(a, function(x) x:(x+20))), ]

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