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I have time on device 11:34

SimpleDateFormat sdf = new SimpleDateFormat("dd.MM.yyyy', 'hh:mm");
Date date_current =  new Date();
Date date_start = null;
date_start = sdf.parse("12.03.2014, 12:00");// I PARSE THIS DATE!!!

RESULT IS :

date_start:
Wed Mar 12 00:00:00 Восточноевропейское время 2014

BUT SHOULD BE:
Wed Mar 12 12:00:00 Восточноевропейское время 2014

HOW to solve it?

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can you get solution? –  Java Man Mar 12 at 9:58

3 Answers 3

up vote 5 down vote accepted

To get 24h format use HH not hh. In 12h format hours can be in rage 0-11, which makes 12 overflow to 0.

Use

SimpleDateFormat sdf = new SimpleDateFormat("dd.MM.yyyy', 'HH:mm");
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docs.oracle.com/javase/7/docs/api/java/text/… says it all :) OP: read the docs... they're useful. –  XSen Mar 12 at 9:15
    
Thanks for good advice –  Nick Unuchek Mar 12 at 10:05

use 24 hour date format SimpleDateFormat sdf = new SimpleDateFormat("dd.MM.yyyy', 'HH:mm");

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First of all take a look about patterns of Simpledatrformat. where it clearly shows H is for (0-23).

Reference for Date Format Pattern Syntax

so you should change your code like below.

SimpleDateFormat sdf = new SimpleDateFormat("dd.MM.yyyy', 'HH:mm");
Date date_current =  new Date();
Date date_start = null;
date_start = sdf.parse("12.03.2014, 12:00");
System.out.println("now time is.." + date_start);

OR

Use this:

Date date = new Date();
date.setHours(date.getHours() + 8);
System.out.println(date);
SimpleDateFormat simpDate;
simpDate = new SimpleDateFormat("kk:mm:ss");
System.out.println(simpDate.format(date));

Thanks.. use above code to parse correctly!!

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