74

I'm getting a date string from ExtJS in the format:

"2011-04-08T09:00:00"

when i try to deserialize this date, it changes the timezone to Indian Standard Time (adds +5:30 to the time) . This is how i'm deserializing the date:

SimpleDateFormat dateFormat = new SimpleDateFormat("yyyy-MM-dd'T'HH:mm:ss");
getObjectMapper().getDeserializationConfig().setDateFormat(dateFormat);

Doing this also doesn't change the timezone. I still get the date in IST:

SimpleDateFormat dateFormat = new SimpleDateFormat("yyyy-MM-dd'T'HH:mm:ss");
dateFormat.setTimeZone(TimeZone.getTimeZone("GMT"));
getObjectMapper().getDeserializationConfig().setDateFormat(dateFormat);

How do I deserialize the date in the way in which it is coming without the hassles of Timezone?

5 Answers 5

143

I found a work around but with this I'll need to annotate each date's setter throughout the project. Is there a way in which I can specify the format while creating the ObjectMapper?

Here's what I did:

public class CustomJsonDateDeserializer extends JsonDeserializer<Date>
{
    @Override
    public Date deserialize(JsonParser jsonParser,
            DeserializationContext deserializationContext) throws IOException, JsonProcessingException {

        SimpleDateFormat format = new SimpleDateFormat("yyyy-MM-dd'T'HH:mm:ss");
        String date = jsonParser.getText();
        try {
            return format.parse(date);
        } catch (ParseException e) {
            throw new RuntimeException(e);
        }

    }

}

And annotated each Date field's setter method with this:

@JsonDeserialize(using = CustomJsonDateDeserializer.class)
14
  • 1
    What's the 'T' in the format for, shouldn't it be "yyyy-MM-dd HH:mm:ss"
    – Bryan Hunt
    Jun 16, 2012 at 10:17
  • It's a valid date time pattern. For example even yyyy.MM.dd G 'at' HH:mm:ss z and hh 'o''clock' a, zzzz are valid patterns. Jun 26, 2012 at 17:23
  • 9
    The 'T' is in the format because this is using the ISO 8601 Standard of date time formatting. You obviously are not required to use an ISO standard format, but it can help with compatibility when using 3rd party libraries such as ExtJS. en.wikipedia.org/wiki/…
    – Patrick
    Sep 7, 2012 at 14:51
  • 8
    @jjb NO, this is really wrong. As simpleDateFormatter are not thread safe, and as jackons caches root level Deserializers (and this can't be disabled), you MUST either use a different SimpleDateFormatter for each date as proposde by Varun Achar or synchronize the deserialize method is you use a field for the SimpleDateFormatter. And this field can't be static. This was one of the nastyest bug I ever saw.
    – Snicolas
    Jun 19, 2013 at 15:26
  • 1
    This was helpful, thanks a lot. Since I'm using Java 8 I posted an answer using LocalDate, see stackoverflow.com/a/31810856/60518.
    – Tim Büthe
    Aug 4, 2015 at 13:39
58

This works for me - i am using jackson 2.0.4

ObjectMapper objectMapper = new ObjectMapper();
final DateFormat df = new SimpleDateFormat("yyyy-MM-dd'T'HH:mm:ss");
objectMapper.setDateFormat(df);
8
  • 10
    Or instead of SimpleDateFormat, I use new ISO8601DateFormat(), which is inline with most other language's defaults (C#, Ruby, etc) Sep 13, 2012 at 4:16
  • 3
    Is setDateFormat deprecated? Mar 21, 2013 at 0:49
  • 2
    I am new to jackson, I am wondering where to add the above code?
    – Harbir
    Jul 15, 2014 at 1:07
  • 2
    'objectMapper.setDateFormat(df);' is good if you only have an utility or a unique bean in which you set the format, otherwise you always have to remember to set it wherever you use it. Also, DateFormat is not thread safe! Nov 17, 2014 at 11:49
  • 1
    ObjectMapper is thread safe. You only need one instance of it for for each configuration, i.e., if you need 2 different date formats, then you need 2 ObjectMapper objects, or only one but you need to synchronize the call to the setDateFormat method. Nov 27, 2014 at 5:19
14

There is a good blog about this topic: http://www.baeldung.com/jackson-serialize-dates Use @JsonFormat looks the most simple way.

public class Event {
    public String name;

    @JsonFormat
      (shape = JsonFormat.Shape.STRING, pattern = "dd-MM-yyyy hh:mm:ss")
    public Date eventDate;
}
1
  • This is for serialization but not deserialization? Apr 28 at 18:55
6

In addition to Varun Achar's answer, this is the Java 8 variant I came up with, that uses java.time.LocalDate and ZonedDateTime instead of the old java.util.Date classes.

public class LocalDateDeserializer extends JsonDeserializer<LocalDate> {

    @Override
    public LocalDate deserialize(JsonParser jsonparser, DeserializationContext deserializationcontext) throws IOException {

        String string = jsonparser.getText();

        if(string.length() > 20) {
            ZonedDateTime zonedDateTime = ZonedDateTime.parse(string);
            return zonedDateTime.toLocalDate();
        }

        return LocalDate.parse(string);
    }
  }
1
  • 2
    You might be able to configure and use Jackson's JSR-310 datatype module instead of writing your own deserializer.
    – Paul
    Nov 4, 2015 at 17:51
-2

@JsonFormat only work for standard format supported by the jackson version that you are using.

Ex :- compatible with any of standard forms ("yyyy-MM-dd'T'HH:mm:ss.SSSZ", "yyyy-MM-dd'T'HH:mm:ss.SSS'Z'", "EEE, dd MMM yyyy HH:mm:ss zzz", "yyyy-MM-dd")) for jackson 2.8.6

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