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Quick question. Why does the following work in R (correctly assigning the variable value "Hello" to the first element of the vector):

> a <- "Hello"
> b <- c(a, "There")
> b
[1] "Hello" "There"

And this works:

> c <- c("Hello"=1, "There"=2)
> c
Hello There 
    1     2 

But this does not (making the vector element name equal to "a" rather than "Hello"):

> c <- c(a=1, "There"=2)
> c
    a There 
    1     2 

Is it possible to make R recognize that I want to use the value of a in the statement c <- c(a=1, "There"=2)?

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migrated from stats.stackexchange.com May 18 '12 at 14:41

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This is a question about the workings of R, not about any specific statistical content. It is a good question, but it belongs on Stack Overflow rather than CV. –  gung May 18 '12 at 14:04
    
Oops sorry. Can I move it? –  Victor Van Hee May 18 '12 at 14:07
    
No problem. If you just hang out for a minute, the moderators should move it for you. –  gung May 18 '12 at 14:10
1  
An aside: Ack! You're masking the function c() with a variable! Danger! Danger, Will Robinson! –  joran May 18 '12 at 14:46
    
Oops again. So I shouldn't name a variable 'c'? I contemplated editing my question, but I'll leave it for educational purposes. –  Victor Van Hee May 18 '12 at 14:49

2 Answers 2

up vote 5 down vote accepted

I am not sure how c() internally creates the names attribute from the named objects. Perhaps it is along the lines of list() and unlist()? Anyway, you can assign the values of the vector first, and the names attribute later, as in the following.

a <- "Hello"
b <- c(1, 2)
names(b) = c(a, "There")
b
# Hello There 
#     1     2 

Then to access the named elements later:

b[a] <- 3
b
# Hello There 
#     3     2 
b["Hello"] <- 4
b
# Hello There 
#     4     2
b[1] <- 5
b
# Hello There 
#     5     2

Edit

If you really wanted to do it all in one line, the following works:

eval(parse(text = paste0("c(",a," = 1, 'there' = 2)")))
# Hello there 
# 1     2 

However, I think you'll prefer assigning values and names separately to the eval(parse()) approach.

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That works -- thanks! –  Victor Van Hee May 18 '12 at 14:55

Assign the values in a named list. Then unlist it. e.g.

lR<-list("a" = 1, "There" = 2 )

v = unlist(lR)

this gives a named vector v

v

a There 
1     2 
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