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For example I have 2 variables a and b (actually more than 2 in my real case), can I assign values for them in a way like c(a,b)<-c(0,0), just like the Tuple in Python? Thank you.

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marked as duplicate by Dason, mnel, hadley, Joshua Ulrich, Ananda Mahto Mar 2 '13 at 9:04

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Did you bother to try it? –  Jack Maney Nov 12 '12 at 18:30
    
No, can't assign this way –  Grijesh Chauhan Nov 12 '12 at 18:31
    
@JackManey Yes I tried but didn't get through. I am asking ways of assignment with the same effect. –  ziyuang Nov 12 '12 at 18:38
    
If you want to assign them to all be the same value (i.e. 0 in your example), you can do a = b = 0. But there isn't an equivalent to tuple unpacking in R. –  David Robinson Nov 12 '12 at 18:43
    
Please see this question –  Ricardo Saporta Nov 12 '12 at 23:13

2 Answers 2

up vote 2 down vote accepted

There's no built in way to do it - what you're looking for is very similar to lists and vectors in R - instead of calling back a, b, and c, you call back a[1], a[2], and a[3]. If it's important for you to be able to call back this values by separate names, and to be able to assign them from the same line, you can make a simple function:

Assign <- function(Names, Values) {
             for(i in 1:length(Names)){
                  assign(Names[i], Values[i], envir=.GlobalEnv)
             }}

>A <- c("a", "b", "c", "d")
>B <- c(0,4,2,3)
>Assign(A,B)
>c
#[1] 2

I couldn't figure out a way for the apply family to tackle this one without making it too complicated - maybe someone could help me out.

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1  
Assign <- function(Names, Values) {sapply(seq_along(Names), function(i){assign(Names[i], Values[i], envir=.GlobalEnv)});invisible()} Not too terribly complicated - just use sapply or lapply on a vector of the indices and create an anonymous function to do the actual assignment. I put the invisible in there to make it a little nicer. –  Dason Nov 12 '12 at 19:01
    
Thanks - I've never tried seq_along before - seems like a good alternative for a task that really needs a for loop but is susceptible to the disadvantages that come along with loops. –  Señor O Nov 12 '12 at 19:06
4  
or mapply(assign, Names, Values, MoreArgs = list(envir = .GlobalEnv)) –  flodel Nov 12 '12 at 19:21
    
@flodel Much better - I need to think about mapply more often –  Dason Nov 12 '12 at 19:53

You can use %=% as explained in this question (you have to copy and paste the four functions)

# Example Call;  Note the use of g()  AND  `%=%`
#     Right-hand side can be a list or vector
g(a, b, c)  %=%  list("hello", 123, list("apples, oranges"))

# Results: 
> a
[1] "hello"
> b
[1] 123
> c
[[1]]
[1] "apples, oranges"
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Thanks for the link - looks like this question should probably be closed as a duplicate. –  Dason Nov 13 '12 at 0:12

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