104

When I unlist a list of dates it turns them back into numerics. Is that normal? Any workaround other than re-applying as.Date?

> dd <- as.Date(c("2013-01-01", "2013-02-01", "2013-03-01"))
> class(dd)
[1] "Date"
> unlist(dd)
[1] "2013-01-01" "2013-02-01" "2013-03-01"
> list(dd)
[[1]]
[1] "2013-01-01" "2013-02-01" "2013-03-01"

> unlist(list(dd))
[1] 15706 15737 15765

Is this a bug?

13
  • 3
    From ?unlist: Where possible the list elements are coerced to a common mode during the unlisting, and so the result often ends up as a character vector. Vectors will be coerced to the highest type of the components in the hierarchy NULL < raw < logical < integer < real < complex < character < list < expression: pairlists are treated as lists.
    – Arun
    Mar 27, 2013 at 13:18
  • 7
    yep I did read the manual.... they're already in a common mode Mar 27, 2013 at 13:19
  • 1
    okay - I guess I have to read through reams of quirky behaviour documentation for each function that I use. Mar 27, 2013 at 13:26
  • 9
    @Arun I don't see why that's relevant. Date vectors are internally integers so the problem really is that attributes are stripped. The documentation doesn't mention this explicitly, but there's no way unlist could preserve attributes in general.
    – hadley
    Mar 27, 2013 at 13:32
  • 2
    @Arun yes, because unlist returns non-list inputs unchanged. It doesn't seem at all blurry to me, but the documentation should mention what happens to attributes.
    – hadley
    Mar 27, 2013 at 13:44

2 Answers 2

113

do.call is a handy function to "do something" with a list. In our case, concatenate it using c. It's not uncommon to cbind or rbind data.frames from a list into a single big data.frame.

What we're doing here is actually concatenating elements of the dd list. This would be analogous to c(dd[[1]], dd[[2]]). Note that c can be supplied as a function or as a character.

> dd <- list(dd, dd)
> (d <- do.call("c", dd))
[1] "2013-01-01" "2013-02-01" "2013-03-01" "2013-01-01" "2013-02-01" "2013-03-01"
> class(d) # proof that class is still Date
[1] "Date"
7
  • 8
    This answer would be greatly improved if you could add a little more detail explaining what you are doing, so others will find it more readable later.
    – Dinre
    Mar 27, 2013 at 13:21
  • 3
    @AlessandroJacopson the quote is not necessary (although see help file of do.call) but can sometimes be handy for functions which need to be quoted, e.g. do.call("+", as.list(c(1, 1))). Sep 14, 2017 at 12:26
  • 1
    another nice approach is to perform the conversion from list to vector with Reduce, i.e Reduce("c",dd)
    – Oriol Prat
    Jul 9, 2018 at 11:32
  • 2
    @OriolPrat, that calls Reduce n-1 times, where n is the length of the list. This will perform horribly with larger vectors, analogous (actually, identically) to why building a list/vector iteratively is a poor performer.
    – r2evans
    Aug 17, 2018 at 18:51
  • 7
    Thanks for the code. Doesn't answer the question, tho: why does unlist kill dates?
    – dfrankow
    Mar 24, 2020 at 17:34
14

Or using purrr to flatten a list of dates to a vector preserving types:

list(as.Date(c("2013-01-01", "2013-02-01", "2013-03-01"))) %>% purrr::reduce(c)

results in

[1] "2013-01-01" "2013-02-01" "2013-03-01"
1
  • 1
    This is brilliant!
    – Soldalma
    Aug 2, 2021 at 16:47

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