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I am using following pattern and date

Date : 13-13-2007

Pattern : dd-MM-yyyy

Output: Sun Jan 13 00:00:00 IST 2008 Or 2008-01-13 00:00:00.0

I was expecting exception here. What can i do to generate exception when given date is inproper.

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2 Answers 2

up vote 11 down vote accepted

Use DateFormat.setLenient(false) to tell the DateFormat/SimpleDateFormat that you want it to be strict.

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Thnkx for quick reply –  articlestack May 17 '11 at 10:02
    
After doing changes, you mentioned, it is giving parsing err in date:"13-10-2007 16:52:12.014789", pattern:"dd-MM-yyyy HH:mm:ss.SSSSSS". –  articlestack May 17 '11 at 11:55
    
I found the answer. Java supports 3 digit in ms field means dd-MM-yyyy HH:mm:ss.SSS is supportable –  articlestack May 17 '11 at 12:36

Set Lenient will work for most cases but if you wanna check the exact string pattern then this might help,

    String s = "03/6/1988";
    SimpleDateFormat sdf = new SimpleDateFormat("dd/MM/yyyy");
    try {
        sdf.setLenient(false);
        Date d = sdf.parse(s);
        String s1 = sdf.format(d);
        if (s1.equals(s))
            System.out.println("Valid");
        else
            System.out.println("Invalid");
    } catch (ParseException ex) {
        // TODO Auto-generated catch block
        ex.printStackTrace();
    }

If you give the input as "03/06/1988" then you'll get valid result.

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