44

I have a list of objects. How do I grab the name of just one object from the list? As in:

LIST <- list(A=1:5, B=1:10)
LIST$A
some.way.cool.function(LIST$A)  #function I hope exists
"A"   #yay! it has returned what I want

names(LIST) is not correct because it returns "A" and "B".

Just for context I am plotting a series of data frames that are stored in a list. As I come to each data.frame I want to include the name of the data.frame as the title. So an answer of names(LIST)[1] is not correct either.

EDIT: I added code for more context to the problem

x <- c("yes", "no", "maybe", "no", "no", "yes")
y <- c("red", "blue", "green", "green", "orange")
list.xy <- list(x=x, y=y)

WORD.C <- function(WORDS){
require(wordcloud)

L2 <- lapply(WORDS, function(x) as.data.frame(table(x), stringsAsFactors = FALSE))

    FUN <- function(X){
        windows() 
        wordcloud(X[, 1], X[, 2], min.freq=1)
        mtext(as.character(names(X)), 3, padj=-4.5, col="red")  #what I'm trying that isn't working
    }
    lapply(L2, FUN)
}

WORD.C(list.xy)

If this works the names x and y will be in red at the top of both plots

5
  • But, but, but ... you never gave a name to the data.frame. How are we supposed to print something that doesn't exist?
    – IRTFM
    Jan 28 '12 at 22:50
  • @DWin true but when I wrap the vectors up into a table and dataframe it retains the original vector names in L2. A browser() after L2 and and names(L2) reveals this Browse[1]> names(L2) [1] "x" "y" Jan 28 '12 at 23:18
  • So did you want the column names or the name of the object?
    – IRTFM
    Jan 28 '12 at 23:24
  • 1
    @DWin Name of the object (dataframes called x and y). Sorry if I was unclear in this. This one was a bit squirrely to explain. What Dason showed is correct. Jan 28 '12 at 23:26
  • both question and answer here are so cluttered in unnecessary details :(
    – ihadanny
    Oct 16 '19 at 7:13
107

You can just use:

> names(LIST)
[1] "A" "B"

Obviously the names of the first element is just

> names(LIST)[1]
[1] "A"
3
  • 2
    I added more context for clarity but names(LIST)[1] does not work. Jan 28 '12 at 20:49
  • 1
    The obvious solution it to replace the lapply with a loop and you are done... I doubt there is any clean way out as with lapply your function does not know which index is processing.
    – Dr G
    Jan 28 '12 at 21:03
  • I was afraid a loop was the answer. I'm really bad with loops. R is my only language so with out an apply solution I am lost or very disoriented. Jan 28 '12 at 22:00
11

Making a small tweak to the inside function and using lapply on an index instead of the actual list itself gets this doing what you want

x <- c("yes", "no", "maybe", "no", "no", "yes")
y <- c("red", "blue", "green", "green", "orange")
list.xy <- list(x=x, y=y)

WORD.C <- function(WORDS){
  require(wordcloud)

  L2 <- lapply(WORDS, function(x) as.data.frame(table(x), stringsAsFactors = FALSE))

  # Takes a dataframe and the text you want to display
  FUN <- function(X, text){
    windows() 
    wordcloud(X[, 1], X[, 2], min.freq=1)
    mtext(text, 3, padj=-4.5, col="red")  #what I'm trying that isn't working
  }

  # Now creates the sequence 1,...,length(L2)
  # Loops over that and then create an anonymous function
  # to send in the information you want to use.
  lapply(seq_along(L2), function(i){FUN(L2[[i]], names(L2)[i])})

  # Since you asked about loops
  # you could use i in seq_along(L2) 
  # instead of 1:length(L2) if you wanted to
  #for(i in 1:length(L2)){
  #  FUN(L2[[i]], names(L2)[i])
  #}
}

WORD.C(list.xy)
0

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