75

Say I have a string

"1974-03-20 00:00:00.000"

It is created using DateTime.now(), how do I convert the string back to a DateTime object?

148

DateTime has a parse method

var parsedDate = DateTime.parse('1974-03-20 00:00:00.000');

https://api.dartlang.org/stable/dart-core/DateTime/parse.html

11
  • 5
    not support for "2019-02-14T16:27:30.1519239+03:30" because that regex just support 6 digit for milisecond not 7 – Ali Yousefi Feb 14 '19 at 13:26
  • 1
    Yes, I get the following error : FormatException: Invalid date format here is the date as a string : 2019-08-01T08:06:10.7790549Z – Billy Mahmood Aug 1 '19 at 7:56
  • 2
    Can you please try with T replaced by ` ` (space) if you get the same error? – Günter Zöchbauer Aug 1 '19 at 8:12
  • 1
    @GünterZöchbauer yes still get the same error - here is what I tried DateTime.parse("2019-07-31 11:25:46.2265012Z"); Error: "Invalid date format2019-07-31 11:25:46.2265012Z" – Billy Mahmood Aug 1 '19 at 8:15
  • 1
    I just tried it in dartpad.dartlang.org. You can leave the T, but you have to remove one digit from the seconds fractions (the last digit before Z). – Günter Zöchbauer Aug 1 '19 at 8:18
39

There seem to be a lot of questions about parsing timestamp strings into DateTime. I will try to give a more general answer so that future questions can be directed here.

  • Your timestamp is in an ISO format. Examples: 1999-04-23, 1999-04-23 13:45:56Z, 19990423T134556.789. In this case, you can use DateTime.parse or DateTime.tryParse. (See the DateTime.parse documentation for the precise set of allowed inputs.)

  • Your timestamp is in a standard HTTP format. Examples: Fri, 23 Apr 1999 13:45:56 GMT, Friday, 23-Apr-99 13:45:56 GMT, Fri Apr 23 13:45:56 1999. In this case, you can use dart:io's HttpDate.parse function.

  • Your timestamp is in some local format. Examples: 23/4/1999, 4/23/99, April 23, 1999. You can use package:intl's DateFormat class and provide a pattern specifying how to parse the string:

    import 'package:intl/intl.dart';
    
    ...
    
    var dmyString = '23/4/1999';
    var dateTime1 = DateFormat('d/M/yyyy').parse(dmyString);
    
    var mdyString = '4/23/99'; 
    var dateTime2 = DateFormat('M/d/yy').parse(mdyString);
    
    var mdyFullString = 'April 23, 1999';
    var dateTime3 = DateFormat('MMMM d, yyyy', 'en_US').parse(mdyFullString));
    

    See the DateFormat documentation for more information about the pattern syntax.

    DateFormat limitations:

  • Last resort: If your timestamps are in a fixed, known, numeric format, you always can use regular expressions to parse them manually:

    var dmyString = '23/4/1999';
    
    var re = RegExp(
      r'^'
      r'(?<day>[0-9]{1,2})'
      r'/'
      r'(?<month>[0-9]{1,2})'
      r'/'
      r'(?<year>[0-9]{4,})'
      r'$',
    );
    
    var match = re.firstMatch(dmyString);
    if (match == null) {
      throw FormatException('Unrecognized date format');
    }
    
    var dateTime4 = DateTime(
      int.parse(match.namedGroup('year')),
      int.parse(match.namedGroup('month')),
      int.parse(match.namedGroup('day')),
    );
    

    See https://stackoverflow.com/a/63402975/ for another example.

    (I mention using regular expressions for completeness. There are many more points for failure with this approach, so I do not recommend it unless there's no other choice. DateFormat usually should be sufficient.)

3
  • DateFormat('d/M/yyyy').parse('2020-10-22 16:17:18'); did not work for me. any suggestion. – Kamlesh Oct 22 '20 at 17:51
  • @Kamlesh Of course that didn't work; that format doesn't match the parsed string at all. d/M/yyyy means day, month, 4-digit year, separated by slashes. You want something like yyyy-MM-dd HH:mm:ss. However, since that's an ISO format, you could just use DateTime.parse. – jamesdlin Oct 22 '20 at 18:11
  • Shouldn't something like the fact that "DateFormat cannot parse dates that lack explicit field separators" be at least mentioned in the docs? Seems to me an important note to add... – il_boga Oct 27 '20 at 13:43
0

void main() {
  
  var dateValid = "30/08/2020";
  
  print(convertDateTimePtBR(dateValid));
  
}

DateTime convertDateTimePtBR(String validade)
{
   DateTime parsedDate = DateTime.parse('0001-11-30 00:00:00.000');
  
  List<String> validadeSplit = validade.split('/');
  
  if(validadeSplit.length > 1)
  {
      String day = validadeSplit[0].toString();
      String month = validadeSplit[1].toString(); 
      String year = validadeSplit[2].toString();
    
     parsedDate = DateTime.parse('$year-$month-$day 00:00:00.000');
  }
 
  return parsedDate;
}

0

Most of the time, the date from api response is in String that we need to convert into DateTime object. This we can achieve using parse() method which takes string as an argument, as below:

  String strDt = "1974-03-20 00:00:00.000";
  DateTime parseDt = DateTime.parse(strDt);
  print(parseDt); // 1974-03-20 00:00:00.000

if you to add 'Z' at the end of the date string so it gets parsed as a UTC time.

DateTime createdUTCDt = DateTime.parse("${strDt}Z");

If you want to parse a specific custom date time. Below is an example that demonstrates how to do it

final dateStr = 'October 15, 2020 at 9:44:45 AM UTC+7';
final formatter = DateFormat(r'''MMMM dd, yyyy 'at' hh:mm:ss a Z''');

final dateTimeFromStr = formatter.parse(dateStr);

print(dateTimeFromStr); // 2020-10-15 09:44:45.000
0

you can just use : DateTime.parse("your date string");

for any extra formating, you can use "Intl" package.

-1
import 'package:intl/intl.dart';

DateTime brazilianDate = new DateFormat("dd/MM/yyyy").parse("11/11/2011");
1
  • 2
    While this code may answer the question, providing additional context regarding why and/or how this code answers the question improves its long-term value. – β.εηοιτ.βε Aug 5 '20 at 17:42
-5

I solved this by creating, on the C# server side, this attribute:

using Newtonsoft.Json.Converters;

public class DartDateTimeConverter : IsoDateTimeConverter
{
    public DartDateTimeConverter() 
    {
        DateTimeFormat = "yyyy'-'MM'-'dd'T'HH':'mm':'ss.FFFFFFK";
    }
}

and I use it like this:

[JsonConverter(converterType: typeof(DartDateTimeConverter))]
public DateTimeOffset CreatedOn { get; set; }

Internally, the precision is stored, but the Dart app consuming it gets an ISO8601 format with the right precision.

HTH

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