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With the following code, I am creating a list:

scales <- c(p="hye", r="t3")
details <- list(t=20,y="c", scales)

At the moment the above gives me a list as so:

$t
[1] 20

$y  
[1] "c"

[[3]]
p     r 
"hye"  "t3"

However I want a list like so:

$t
[1] 20

$y  
[1] "c"

$p      
[1] "hye"  

$r
[1] "t3"

Since this is going to be reused in a function I want to keep scales as a vector argument that I can then insert into a list. How can I do this?

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2 Answers 2

up vote 5 down vote accepted

The solution is:

details = c(list(t=20,y="c"),scales)
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You might want to make the Answer more of a statement than a comment/question. Doesn't invoke confidence if you aren't sure it works - which it does. +1 for not needing the as.list().. –  Gavin Simpson Jun 9 '12 at 13:10
    
"Does this work?" was meant to be rhetorical, as in "Is this the solution you're looking for?" Good point though. I'll be more forthright in future :) –  Tim P Jun 9 '12 at 13:13

You want to concatenate vis c() two lists, so use as.list() to convert the scales vector into a list before forming details:

> details <- c(list(t=20, y="c"), as.list(scales))
> details
$t
[1] 20

$y
[1] "c"

$p
[1] "hye"

$r
[1] "t3"
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duplicate.....? –  Tim P Jun 9 '12 at 12:26
1  
That seems more logical but @TimP 's also works (without explicit as.list) plus answered first so I'll accept that answer.Thanks though –  Kaleb Jun 9 '12 at 12:30
1  
Cool. Yeah, no need for as.list here since the result of the c() will be a list anyway. –  Tim P Jun 9 '12 at 12:50
    
@TimP Duplicate yes, almost, but not intentional; we were working on these at the same time - it does happen. –  Gavin Simpson Jun 9 '12 at 13:09

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