50

Obviously the reader doesn't like this format incoming from the response XML.

Wondering if I can reformat this. Trying to convert to DateTime using the following code with my XmlReader:

reader.ReadContentAsDateTime();
49

Xml readers generally expect dates/times in a very specific format; you can use this yourself using XmlConvert:

string s = XmlConvert.ToString(DateTime.Now);
DateTime when = XmlConvert.ToDateTime(s);

If you are using something else, you'll have to read it as a string and use DateTime.TryParseExact (or similar) to specify the actual format string:

string s = reader.ReadContentAsString();
DateTime when = DateTime.ParseExact(s, "M/d/yy hh:mm tt",
     CultureInfo.InvariantCulture);

If you are using XmlSerializer, you could use a shim property to do the conversion - let me know if this is what you are doing...

  • The data I was feeding in happened to be 10/29/2012 15:25 and that failed. When I changed it to 10/11/2012 15:25, it worked. – Brian Leeming Nov 12 '12 at 21:46
  • @MarcGravell, when i try to deserialize some rss feed using XmlSerializer, PubDate element causes error. how can i fix it? – burhan Mar 11 '14 at 0:21
  • 2
    @burhan by looking at what the value is coming in as, and handling it appropriately? Alternatively, the core framework includes RSS-targeted classes that may do a better job. – Marc Gravell Mar 11 '14 at 7:46
  • 1
    @burhan not without seeing the xml and your model, no – Marc Gravell Mar 11 '14 at 21:57
  • 2
    @burhan the solution is, as always, to have xml and a model that match. Sometimes that means you can go direct - you might need to have the dates as a string type (rather than DateTime) and then do additional post-processing on it to parse the time. A random link, however, does not provide the exact xml you are struggling with. – Marc Gravell Mar 12 '14 at 22:38
95

According to the XML schema spec, date time values should be in ISO8601 format, e.g., something like

2009-03-13T22:16:00
  • 2
    In ruby use iso8601 method, eg Time.now.iso8601. – Zubin Mar 14 '14 at 20:33
  • 2
    Out of curiosity, ISO8601 format should look something like 2009-03-18T22:16:00-05:00, but David's answer (omitting the timezone) works for me too (whereas the ISO8601 format doesn't). Is this because of a local serialization in the XmlConverter (which therefore doesn't need the timezone)? – djiango Jun 30 '15 at 20:17
  • 1
    In ISO8601, the timezone is optional, so both my original string and your string are valid ISO8601 date time. According to w3.org/TR/xmlschema-2/#deviantformats, the timezone is also optional in XML schema. I'm not sure why the time zone version doesn't work for you. – David Norman Jul 6 '15 at 21:08
  • 1
    For php Artisans:) there is toIso8601String method in nesbot/carbon php lib. – userlond Oct 21 '15 at 4:53
  • in php you can use date('c', $time); – relipse Jun 20 at 14:52

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.