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I am having an issue using lapply and mapply returning data. Namely that mapply / lapply returns a list of lists. And if I "simplify" the call it strips out the class information.

For example:

library(lubridate)

addBusDays <- function(d, dd) {
 d 
}

# start with datframe
dates <- c(ymd('2013-03-04'), ymd('2013-03-07'))
my.df <- data.frame(n=c(1,2), d=dates)

mapply(addBusDays, my.df$d, 1, SIMPLIFY=F)

returns

[[1]]
[1] "2013-03-03 19:00:00 EST"

[[2]]
[1] "2013-03-06 19:00:00 EST"

class(mapply(addBusDays, my.df$d, 1, SIMPLIFY=F)[[1]]
[1] "POSIXct" "POSIXt"

It looks like it is returning a list of lists, which is workable but I don't lke the solution. Allowing the function to simplify strips the POSIX class:

mapply(addBusDays, my.df$d, 1, SIMPLIFY=T)
class(mapply(addBusDays, my.df$d, 1, SIMPLIFY=T))

> mapply(addBusDays, my.df$d, 1, SIMPLIFY=T)
[1] 1362355200 1362614400
> class(mapply(addBusDays, my.df$d, 1, SIMPLIFY=T))
[1] "numeric"

this looks to return a single list, but strips out the class info. ANy help / ideas?

Working orking off of Gavin's suggestions

library(lubridate)

addBusDays <- function(d, dd) {
  d 
}

# start with datframe
dates <- c(ymd('2013-03-04'), ymd('2013-03-07'))
my.df <- data.frame(n=c(1,2), d=dates)
my.df$d.2 <- as.POSIXct(mapply(addBusDays, my.df$d, 2, SIMPLIFY=T), origin="1970-01-01")

typeof(my.df$d)
class(my.df$d)
mode(my.df$d)
typeof(my.df$d.2)
class(my.df$d.2)
mode(my.df$d.2)

my.df

returns

> my.df
  n                   d        d.2
1 1 2013-03-03 19:00:00 2013-03-04
2 2 2013-03-06 19:00:00 2013-03-07

The technique is shifting the day by 1 - it shouldn't in this example as the function returns the date passed in... Other than that the class etc seems spot on.

And I my eyes are fooling me - my problem is in loading the data frame - not with Gavin's solution.

share|improve this question
    
mapply is returning a list, each component of which is a vector of class "POSIXct", inheriting also from class "POSIXt". –  Gavin Simpson Mar 27 '13 at 18:04
    
still not sure how to apply the function and return a list of class POSIXct - are you able to nudge me in that direction? –  akaphenom Mar 27 '13 at 18:08
    
Your wish is my command - see my Answer, now updated. –  Gavin Simpson Mar 27 '13 at 18:17

1 Answer 1

up vote 0 down vote accepted

One option is the do.call() idiom:

> do.call("c", mapply(addBusDays, my.df$d, 1, SIMPLIFY = FALSE))
[1] "2013-03-03 18:00:00 CST" "2013-03-06 18:00:00 CST"

Wherein we get R to arrange to call the c() function with input data given by the list returned from mapply().

An alternative, which is most likely going to be quicker for large data that the do.call idiom is:

> as.POSIXlt(mapply(addBusDays, my.df$d, 1), origin = "1970-01-01 00:00.00")
[1] "2013-03-03 18:00:00 CST" "2013-03-06 18:00:00 CST"

or more wrapped back to a "POSIXct" object

> as.POSIXct(as.POSIXlt(mapply(addBusDays, my.df$d, 1),
+                       origin = "1970-01-01 00:00.00"))
[1] "2013-03-03 18:00:00 CST" "2013-03-06 18:00:00 CST"
share|improve this answer
    
I was considering the second option thinking it was kludgy. But this may be the direction I go, if I cannot get a 'prettier' answer –  akaphenom Mar 27 '13 at 18:18
    
The second option is no kludge - you must set an origin for R to understand what the numeric number of seconds from refers to. –  Gavin Simpson Mar 27 '13 at 18:19
    
Thank you for your prompt, accurate, and courteous response. –  akaphenom Mar 27 '13 at 18:36

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