72

I have two vectors:

vars <- c("SR", "PL")
vis <- c(1,2,3)

Based on these vectors I would like to create the following vector:

"SR.1"  "SR.2"  "SR.3"  "PL.1"  "PL.2"  "PL.3"

With paste I have the following result:

paste(vars, vis, sep=".")
 [1] "SR.1" "PL.2" "SR.3"

How can I create the vector I need?

85

You can use this, but there may be a simpler solution :

R> apply(expand.grid(vars, vis), 1, paste, collapse=".")
[1] "SR.1" "PL.1" "SR.2" "PL.2" "SR.3" "PL.3"

expand.grid gives back a data.frame which when used with apply, apply will convert it to a matrix. This is just unnecessary (and inefficient on large data). outer gives a matrix and also takes function argument. It'll be much efficient on huge data as well.

Using outer:

as.vector(outer(vars, vis, paste, sep="."))
# [1] "SR.1" "PL.1" "SR.2" "PL.2" "SR.3" "PL.3"
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  • 1
    expand.grid returns a table which can be sorted if you want the order to be SR,SR,PL,PL... rather than SR,PL,SR,PL. – rmf Mar 15 '19 at 17:56
21

Another option is to use the each argument of rep:

paste(rep(vars, each = length(vis)), vis, sep = ".")

I find this more straightforward than the solutions based on apply or expand.grid.

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  • Very elegant solution! Thanks! – Megatron Jul 1 at 14:05
13

Another option using sprintf in combination with expand.grid:

eg <- expand.grid(vis, vars)
sprintf('%s.%s', eg[,2], eg[,1])

which gives:

[1] "SR.1" "SR.2" "SR.3" "PL.1" "PL.2" "PL.3"

Explanation:

  • With expand.grid you create all combinations of the two vectors.
  • sprintf pastes the two vectors together according to the specified format ('%s.%s'). Each %s part of the format is replaced by the elements of the vectors.
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  • 1
    I think this is the most elegant solution of all suggested! – JelenaČuklina Aug 8 '17 at 15:51
9

To maintain the order of the requested strings in the question, you can use these two modifications of both methods:

Change order of vectors and combine in reverse order

apply(expand.grid(vis, vars), 1, function(x) paste(x[2], x[1], sep=".")) 
[1] "SR.1" "SR.2" "SR.3" "PL.1" "PL.2" "PL.3"

or transpose the matrix before converting to vector:

as.vector(t(outer(vars, vis, paste, sep="."))) 
[1] "SR.1" "SR.2" "SR.3" "PL.1" "PL.2" "PL.3"
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8

This old question already has an accepted answer. But as it's being used as dupe target, I believe it's worthwhile to add a data.table solution which uses the cross join function CJ():

library(data.table) 
options(datatable.CJ.names=FALSE) # required with version version 1.12.0+
CJ(vars, vis)[, paste(V1, V2, sep =".")]
#[1] "PL.1" "PL.2" "PL.3" "SR.1" "SR.2" "SR.3"

In case the original order is important:

CJ(vars, vis, sorted = FALSE)[, paste(V1, V2, sep =".")]
#[1] "SR.1" "SR.2" "SR.3" "PL.1" "PL.2" "PL.3"

Edit: CJ() has changed default behaviour with version 1.12.0

As announced in the release notes of version 1.12.0 (Point 3) the default option options(datatable.CJ.names=TRUE) has changed. CJ() now auto-names its inputs exactly as data.table() does.

So, the code above has to be amended for data.table version 1.12.0 and above:

library(data.table)   ### version 1.12.0+
CJ(vars, vis)[, paste(vars, vis, sep =".")]

and

CJ(vars, vis, sorted = FALSE)[, paste(vars, vis, sep =".")]

resp.

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1

Some other options with purrr :

library(purrr)
cross(list(vars, vis)) %>% map_chr(paste, sep = ".", collapse = ".")
#[1] "SR.1" "PL.1" "SR.2" "PL.2" "SR.3" "PL.3"

We can also use cross2

cross2(vars, vis) %>%  map_chr(paste, sep = ".", collapse = ".")
#[1] "SR.1" "PL.1" "SR.2" "PL.2" "SR.3" "PL.3"
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