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I get this kind of data from XML document :

2012-08-29T18:18:00+02:00

and I'd like to convert it with the DateTime object. So I can manage it as I want, getting only day and/or month.

But if I do it :

DateTime.Parse("2012-08-29T18:18:00+02:00").Date

I get somethings like \/Date(1346191200000)\/ :O

Where am I wrong? I think I need to specify the type of date when I parse it?


After the suggestions, I tried with this data :

string dataStr = "2012-11-15T13:50:58+01:00";
DateTime data = DateTime.Parse(dataStr).Date;
Response.Write(data.Hour + "<br />");

but the output is 0, so the time is missing. Why?

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2  
DateTime.Parse seems to work fine on that format. Might your issue be with actually displaying the resulting DateTime? –  Rawling Nov 15 '12 at 9:01
1  
It's an RFC3339-date, which makes it also qualify as an ISO8601-date. –  Magnus Hoff Nov 15 '12 at 9:02
1  
Where did you get this value \/Date(1346191200000)\/? And how you are displaying your date? –  Sergey Berezovskiy Nov 15 '12 at 9:07
    
I print the object with jsonSerializer.Serialize –  markzzz Nov 15 '12 at 9:10
    
Check the updated! The time will vanish?!?!? –  markzzz Nov 15 '12 at 14:08

2 Answers 2

up vote 1 down vote accepted

According to your latest update:

DateTime d = DateTime.ParseExact("2012-11-15T13:50:58+01:00", "yyyy-MM-ddTHH:mm:ssK", null);

Response.Write(d.Hour + "<br />");
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No, it doesnt works! Check the update! Time will vanish... –  markzzz Nov 15 '12 at 14:07
    
I changed answer. –  Danilo Vulović Nov 15 '12 at 14:13
    
And I'd like to print directly the date + time? Tried d.Date but it is 0 :O –  markzzz Nov 15 '12 at 14:17
    
How you print? With Response.Write. Can you debug your code to check value of d variable? –  Danilo Vulović Nov 15 '12 at 14:18
    
I mean : the only way I see to print the Date + Time shortly is d.ToShortDateString() + " - " + d.TimeOfDay –  markzzz Nov 15 '12 at 14:22

It is the standard format used in xmls and all xml parser should handle it correctly. You don't need to parse it. Using Linq2Xml, for example, All you have to do is casting it to a DateTime object

XElement xElem = new XElement("Time", "2012-08-29T18:18:00+02:00");
var dt = (DateTime)xElem;
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