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I am running into an error when I try to localize times for "date" (a variable of class=POSIXlt) in my dataset. Example code is as follows:

# All dates are coded by survey software in EST(not local time)
date <- c("2011-07-26 07:23", "2011-07-29 07:34", "2011-07-29 07:40")
region <-c("USA-EST", "UK", "Singapore")

#Change the times based on time-zone differences
start_time<-strptime(date,"%Y-%m-%d %h:%m")
localtime=as.POSIXlt(start_time)
localtime<-ifelse(region=="UK",start_time+6,start_time)
localtime<-ifelse(region=="Singapore",start_time+12,start_time)

#Then, I need to extract the hour and weekday
weekday<-weekdays(localtime)
hour<-factor(localtime)

There must be something wrong with my "ifelse" statement, because I get the error: number of items to replace is not a multiple of replacement length. Please help!

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3  
Your strptime should be start_time<-strptime(date,"%Y-%m-%d %H:%m:%s") –  Ryogi Jul 24 '12 at 16:37
    
Hi there-sorry about that. Edited to actually reflect my data. I don't think strptime is the problem... –  roody Jul 24 '12 at 16:41
    
Your date is not formatted like that. Notice that start_time is NA NA NA. Use a format like %Y-%m-%d %H:%M instead of %m/%d/%Y %H:%M –  GSee Jul 24 '12 at 16:45
    
Made those changes (although I can apparently read the dates in using my incorrect code). Again, I don't think strptime is the problem. –  roody Jul 24 '12 at 16:50

2 Answers 2

How about using R's native time code? The trick is that you can't have more than one time-zone in a POSIX vector, so use a list instead:

region <- c("EST","Europe/London","Asia/Singapore")
(localtime <- lapply(seq(date),function(x) as.POSIXlt(date[x],tz=region[x])))
[[1]]
[1] "2011-07-26 07:23:00 EST"

[[2]]
[1] "2011-07-29 07:34:00 Europe/London"

[[3]]
[1] "2011-07-29 07:40:00 Asia/Singapore"

And to convert to a vector in a single timezone:

Reduce("c",localtime)
[1] "2011-07-26 13:23:00 BST" "2011-07-29 07:34:00 BST"
[3] "2011-07-29 00:40:00 BST"

Note that my system timezone is BST, but if yours is EST it will convert to that.

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Hi there-I follow your logic, but am having trouble applying it to my real code. I get the error: Error in as.POSIXlt.numeric(start_time[x], tz = timezone[x]) : 'origin' must be supplied. Thoughts? –  roody Jul 24 '12 at 17:41
    
@roody It sounds like you are passing numbers rather than character strings to as.POSIXlt. Possibly because you have a factor rather than a character vector? –  James Jul 24 '12 at 21:58

You can use the timezone handling built in in POSIXct:

> start_time <- as.POSIXct(date,"%Y-%m-%d %H:%M", tz = "America/New_York")
> start_time
[1] "2011-07-26 07:23:00 EDT" "2011-07-29 07:34:00 EDT" "2011-07-29 07:40:00 EDT"
> format(start_time, tz="Europe/London", usetz=TRUE)
[1] "2011-07-26 12:23:00 BST" "2011-07-29 12:34:00 BST" "2011-07-29 12:40:00 BST"
> format(start_time, tz="Asia/Singapore", usetz=TRUE)
[1] "2011-07-26 19:23:00 SGT" "2011-07-29 19:34:00 SGT" "2011-07-29 19:40:00 SGT"
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