Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a vector like this

 c("1", "a","b")

and I'd like to create this list

list("a"=1,"b"=1)

is there a way to do it in an "apply" style? Thanks.

-k

share|improve this question
    
Hi Khanh -- one value, two labels? That looks odd. –  Dirk Eddelbuettel Dec 8 '10 at 18:22
    
I need a quick look up, like a hash table. In this case, "a", and "b" are nodes in a network, and 1 is their community id. Is it efficient? –  knguyen Dec 8 '10 at 18:44

4 Answers 4

up vote 5 down vote accepted

Like this?

R> kn <- c("1", "a", "b")
R> nl <- vector(mode="list", length=length(kn)-1)
R> names(nl) <- kn[-1]
R> nl <- lapply(nl, function(x) kn[1])
R> nl
$a
[1] "1"

$b
[1] "1"

R> 

With kudos to Gavin for spotting an earlier error.

share|improve this answer
    
@Dirk: kn doesn't have any names, and won't the lapply step overwrite nl so setting names before it won't make them stick? –  Gavin Simpson Dec 8 '10 at 18:31
    
I literally copied what worked in my shell. –  Dirk Eddelbuettel Dec 8 '10 at 18:37
    
Err, no, you were quite correct. Fixed, re-ran and edited. Thanks for spotting that. –  Dirk Eddelbuettel Dec 8 '10 at 18:45
    
names(nl) <- kn[-1] instead. Thanks. –  knguyen Dec 8 '10 at 18:50
    
It still needs as.numeric(kn[1]) in the anonymous function - same problem I had with my answer that @Joshua Ulrich pointed out. –  Gavin Simpson Dec 8 '10 at 19:01

Using as.list and setNames:

x = c("1", "a","b")
as.list(setNames(rep(as.numeric(x[1]), length(x) - 1), x[-1]))
share|improve this answer
    
__________neat! –  Joris Meys Dec 9 '10 at 15:26

It isn't an apply style, but a simple function to wrap the required commands is:

makeList <- function(vec) {
    len <- length(vec[-1])
    out <- as.list(rep(as.numeric(vec[1]), len))
    names(out) <- as.character(vec[-1])
    out
}

Using your vector, it gives:

> vec <- c("1", "a","b")
> makeList(vec)
$a
[1] 1

$b
[1] 1
share|improve this answer
1  
Might want to as.numeric the "1" –  Joshua Ulrich Dec 8 '10 at 18:30
    
@Joshua; woops! Well spotted. –  Gavin Simpson Dec 8 '10 at 18:32

For completeness, there is a simpler one-liner to do it in an "apply" style as requested:

as.list(sapply(x[-1],function(y) as.double(x[1])))

While not the fastest option, it is surely neat enough to deserve its place as an answer to the question. A significant speed-up is possible by not unnecessarily simplifying to a vector:

    library(microbenchmark)
    microbenchmark(times=20, 
               Charles=as.list(setNames(rep(as.numeric(x[1]), length(x) - 1), x[-1])),
               Gavin=makeList(x),
               Anon=sapply(x[-1],function(y) as.double(x[1]),simplify=FALSE)
)

Unit: microseconds
    expr    min      lq median      uq    max neval
 Charles 10.868 11.7735 11.774 12.3775 55.848    20
   Gavin 12.075 12.6795 13.132 13.8870 26.867    20
    Anon  6.643  7.0950  7.548  8.1520 17.811    20
share|improve this answer
    
Rather than as.list(sapply(...)), use sapply(..., simplify=FALSE). –  Matthew Lundberg Mar 15 at 3:47
    
Without simplify=F, we'll have identical(Charles,Anon)=FALSE, which I didn't want. With simplify=F, your suggestion leads to further speed-up --- I've updated my answer. Thanks. –  andrekos Mar 15 at 7:00

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.