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I can make this list by hand:

list( list(n=1) , list(n=2), list(n=3) )

But how do I automate this, for instance if I want n to go up to 10? I tried as.list(1:10), which firstly is a different type of data structure, and secondly I couldn't work out how to specify n.

I'm hoping the answer can be expanded to multiple element lists, e.g. all combinations of 1:3 and c('A','B'):

list( list(n=1,z='A') , list(n=2,z='A'), list(n=3,z='A'),
      list(n=1,z='B') , list(n=2,z='B'), list(n=3,z='B') )

Background: I'll be using it along the lines of: lapply( outer_list, function(params) do.call(FUN,params) )

UPDATE: It was difficult to choose which answer to give the tick to. I went with the expand.grid approach as it can scale to more than two parameters more easily; the use of mapply as shown in the comment makes the two examples above look reasonably compact and readable:

outer_list=with( expand.grid(n=1:10,stringsAsFactors=F),
    mapply(list, n=n, SIMPLIFY=F)
    )

outer_list=with( expand.grid(n=1:3,z=c('A','Z'), stringsAsFactors=F),
    mapply(list, n=n, z=z, SIMPLIFY=F)
    )

They violate the DRY principle, by repeating the parameter names in the mapply() call, which bothers me a little. So, when it bothers me enough I will use the alply call as shown in Sebastian's answer.

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2 Answers 2

up vote 3 down vote accepted
vals <- expand.grid(n=1:3, z=c("A", "B"), 
                      KEEP.OUT.ATTRS=FALSE, stringsAsFactors=FALSE)

library(plyr)
alply(vals, 1, as.list)

$`1`
$`1`$n
[1] 1

$`1`$z
[1] "A"


$`2`
$`2`$n
[1] 2

$`2`$z
[1] "A"


$`3`
$`3`$n
[1] 3

$`3`$z
[1] "A"


$`4`
$`4`$n
[1] 1

$`4`$z
[1] "B"


$`5`
$`5`$n
[1] 2

$`5`$z
[1] "B"


$`6`
$`6`$n
[1] 3

$`6`$z
[1] "B"


attr(,"split_type")
[1] "array"
attr(,"split_labels")
  n z
1 1 A
2 2 A
3 3 A
4 1 B
5 2 B
6 3 B
share|improve this answer
1  
Technically, you can also use the apply function here, but it returns a character for n instead of a numeric. –  sebastian-c Jul 27 '12 at 9:53
2  
with base functions, with(p, mapply(list, n=n, z=z, SIMPLIFY=FALSE)) –  baptiste Jul 27 '12 at 9:55

You don't need to expand using expand.grid.

L <- mapply(function(x, y) list("n"=x,"z"=y),
            rep(1:10, each=10), LETTERS[1:10],
            SIMPLIFY=FALSE)

EDIT (see comment below)

L <- mapply(function(x, y) list("n"=x,"z"=y),
            rep(1:10, each=length(LETTERS[1:10])), LETTERS[1:10],
            SIMPLIFY=FALSE)
share|improve this answer
    
That's a nice straightforward solution. –  Ananda Mahto Jul 27 '12 at 10:00
1  
...but expand.grid has the advantage it can easily be generalized to any number of vectors. –  flodel Jul 27 '12 at 11:05
3  
You should use vectors of different length (the OP suggested 1:3 and LETTERS[1:2]) to make it more apparent that each= must be set to the length of your second vector. Even better, write it as a function. –  flodel Jul 27 '12 at 11:10

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