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I have date in the format "yyyy-MM-dd'T'HH:mm:ss.sssZ". for example the date is "2018-07-17T09:59:51.312Z". I am using the below code to parse the String in Java.

  String date="2018-07-17T09:59:51.312Z";
    SimpleDateFormat simpleDateFormat = new SimpleDateFormat("yyyy-MM-dd'T'HH:mm:ss.sssZ");
   Date transactionDateTime = simpleDateFormat.parse(date);

This is giving me "Unparseable date:" Exception. Can anyone please tell me how to do this?

  • What is the Z in your date meant to be? – Thomas Sep 24 '18 at 13:09
  • Put the milliseconds as SSS and escape the Z. That should work unless you have another error... – Rafael Palomino Sep 24 '18 at 13:10
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    @Thomas Z means the UTC time zone. – Henry Sep 24 '18 at 13:10
  • @Thomas that's the UTC indicator ("Zulu time"). – daniu Sep 24 '18 at 13:10
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    @RafaelPalomino and kAliert, putting the Z in single quotes will give the wrong time on most JVMs. The Z is an offset and needs to be parsed as such. Otherwise SimpleDateFormat will use the JVM’s default time zone, leading to an incorrect point in time. – Ole V.V. Sep 24 '18 at 13:26
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You forgot to add ' before the Z - RFC 822 time zone (-0800)

String date = "2018-07-17T09:59:51.312Z";
SimpleDateFormat simpleDateFormat = new SimpleDateFormat("yyyy-MM-dd'T'HH:mm:ss.SSS'Z'");
Date transactionDateTime = simpleDateFormat.parse(date);

That will do the work

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    Incorrect answer. The apostrophe will exactly make sure that the offset of Z is not parsed as an offset. The result will be an incorrect point in time (on the vast majority of JVMs). – Ole V.V. Sep 24 '18 at 13:29
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    Escaping the trailing Z in the input (i.e. handling as literal) is not correct. You have at least to set the time zone on your formatter to GMT0, too, in order to make this answer somehow useful. – Meno Hochschild Sep 24 '18 at 13:30
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    @Sunny beware that using this answer could cause you errors - see comments below your question. – achAmháin Sep 24 '18 at 13:33
  • I ran your code in Europe/Copenhagen time zone. Correct result would have printed as Tue Jul 17 11:59:51 CEST 2018 since I’m at UTC offset +02:00 in July. Observed result: Tue Jul 17 09:59:51 CEST 2018, two hours too early. – Ole V.V. Sep 24 '18 at 13:52
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You should consider using the DateTimeFormatter and ZonedDateTime for this example. Date and SimpleDateFormat are old classes, and have been prone to errors and can be problematic; the newer classes mentioned (Java8+) are much more robust.

And change the end of your pattern from ...mm:ss.sssZ to ...mm:ss.SSSz.

DateTimeFormatter formatter = DateTimeFormatter.ofPattern("yyyy-MM-dd'T'HH:mm:ss.SSSz");
ZonedDateTime zonedDateTime = ZonedDateTime.parse(date, formatter);
System.out.println(formatter.format(zonedDateTime));

You could also use OffsetDateTime or Instant (credit: Ole V.V) which will parse for you, giving the same output:

System.out.println(OffsetDateTime.parse("2018-07-17T09:59:51.312Z"));
System.out.println(Instant.parse("2018-07-17T09:59:51.312Z"));

Output:

2018-07-17T09:59:51.312Z

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    Using the modern date and time API is an excellent idea. ZonedDateTime is overkill since the string hasn’t got a time zone in, only an offset. Use OffsetDateTime or Instant, the choice depending on more exact requirements. And those classes will parse even without a DateTimeFormatter since the format is ISO 8601, the default format for the modern classes. – Ole V.V. Sep 24 '18 at 13:23
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    I agree that this is a good answer. Maybe you'd like to add a short note on the difference between the old java.util.Date and the newer java.time package. – Amadán Sep 24 '18 at 13:26
  • @OleV.V. edited as per your comment - I thought the Z required that, but I guess you learn something new every day, thanks. – achAmháin Sep 24 '18 at 13:27

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