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Is there a better way to parse ISO8601 date representations than what I did, below?

The input datetime was formatted to an ISO8601 Standard representation (YYYY-MM-DDThh:mm-hh:mm), i.e. year-month-dayTlocaltime-UTCoffset. The UTC offset would be -ve for New York, as shown, and +ve for Warsaw, for example. I read this into R using two lines of code as follows:

First, I removed the ":" from the UTC offset (R is expecting the format nnnn for the UTC offset):

    dataset$nocolon<- paste(substr(dataset$timestampISO8601,1,22),substr(dataset$timestampISO8601,24,25),sep="")

Then, I parsed the timestamps to get UTC time:

    dataset$datetimeUTC <- strptime(dataset$nocolon, format="%Y-%m-%dT%H:%M:%S%z", tz="UTC")
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    Better in what way? What's wrong with your solution? – Joshua Ulrich Jul 6 '14 at 2:39
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    Add some example dates from your inputs, few people are going to be bothered to construct test cases otherwise. – Spacedman Jul 6 '14 at 8:00
  • This question should be closed. See stackoverflow.com/questions/24592178/… – JAQ Jul 6 '14 at 17:39
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I think this is pandas default output format for local time, so it should be encountered frequently. I converted your solution into one-liner:

v = "2009-01-27 20:02:22+01:00"
as.POSIXct(gsub(":","",v),  format = "%Y-%m-%d %H%M%S%z")

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