2

The result of merge.zoo does not have the same time zone as its input.

Consider the following example

library(zoo)
zoo_a=zoo(data.frame(a=1:5),
          seq(as.POSIXct("2014-01-01 00:00:01",tz="UTC"),
              as.POSIXct("2014-01-01 00:00:05",tz="UTC"),
              by=1)
          )
zoo_b=zoo(data.frame(a=1:4),
          seq(as.POSIXct("2014-01-01 00:00:01",tz="UTC"),
              as.POSIXct("2014-01-01 00:00:05",tz="UTC"),
              by=1)
          )

zoo_merged=merge(zoo_a,zoo_b)
time(zoo_merged)[1]
#2013-12-31 19:00:01 EST
time(zoo_a)[1]
#2014-01-01 00:00:01 UTC
time(zoo_b)[1]
#2014-01-01 00:00:01 UTC

The time zone associated with zoo_merged is not really EST but

library(lubridate)
tz(time(zoo_merged)[1])
#""

The time zone attribute seems to have been removed and R is probably using some sort of default timezone to display the data.

I can fix this with lubridate via

time(zoo_merged)=with_tz(time(zoo_merged),tz="UTC")
time(zoo_merged)[1]
#2014-01-01 00:00:01 UTC

Is there any way to fix this properly, i.e. without having to change the timezone afterwards? I was thinking of changing the code for merge.zoo but there's not a single line of comments in the respective code...

11
  • I count more than 50 comments in merge.zoo. The only way to "fix" this is to submit a feature request to the package maintainer. That said, reconsider what the expected behavior should be. Note that the time is correct. It seems reasonable to me to return the object in your local timezone by default. What should merge.zoo do if the objects have different timezones? Aug 12, 2014 at 16:39
  • @cryo111 : The reason Joshua sees comments is that he knows how to look at the source. By default comments are not displayed in the byte-compiled listing you get by looking at what appears at the console when you type the function name.
    – IRTFM
    Aug 12, 2014 at 16:43
  • @JoshuaUlrich I understand your point with two different time zones. Still, with two identical time zones I would naively have thought that the output has the same tz as the input.
    – cryo111
    Aug 12, 2014 at 16:46
  • 1
    You would not necessarily need to hack the code. Another option would be to just wrap a call to merge.zoo in a function that dresses up your result the way you specify, perhaps with the TZ attribute of the first argument?
    – IRTFM
    Aug 12, 2014 at 16:50
  • 1
    A workaround would be: library(xts); as.zoo(merge(as.xts(zoo_a), as.xts(zoo_b))) Aug 12, 2014 at 17:18

1 Answer 1

0

Solution as suggested by G. Grothendieck

library(xts)

merge2=function(x,y) {
  as.zoo(merge(as.xts(x), as.xts(y)))
}

time(merge2(zoo_a,zoo_b))[1]
#[1] "2014-01-01 00:00:01 UTC"

Or as suggested by 42-

merge3=function(x,y) {
  if ((tmp_tzone<-attr(time(x),"tzone"))!=attr(time(y),"tzone")) {
    message("Timezone attributes of x and y are not the same. Using default tz.")
    return(merge(x,y))
  } else {
    tmp=merge(x,y)
    attr(time(tmp),"tzone")=tmp_tzone
    return(tmp)
  }
}

#input with same tzones 
time(merge3(zoo_a,zoo_b))[1]
#[1] "2014-01-01 00:00:01 UTC"

#input with different tzones
zoo_c=zoo(data.frame(a=1:4),
          seq(as.POSIXct("2014-01-01 00:00:01",tz="EDT"),
              as.POSIXct("2014-01-01 00:00:05",tz="EDT"),
              by=1)
)

time(merge3(zoo_a,zoo_c))[1]
#Timezone attributes of x and y are not the same. Using default tz.
#[1] "2014-01-01 01:00:01 CET"

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