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What's a good method to, given two Date objects, compare the difference between their time portion only, completely ignoring Year, Month and Day?

It's quite the opposite of this question.

UPDATE: Here's the final code for future reference:

private long differenceBetween(Date currentTime, Date timeToRun)
    Calendar currentCal = Calendar.getInstance();

    Calendar runCal = Calendar.getInstance();
    runCal.set(Calendar.DAY_OF_MONTH, currentCal.get(Calendar.DAY_OF_MONTH));
    runCal.set(Calendar.MONTH, currentCal.get(Calendar.MONTH));
    runCal.set(Calendar.YEAR, currentCal.get(Calendar.YEAR));

    return currentCal.getTimeInMillis() - runCal.getTimeInMillis();
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Yes, it does. Why wouldn't it? – kolrie Oct 6 '11 at 15:30
The irony of this solution is that you take two objects that are thin wrappers around a primitive of type long, invoke a massive and complex API to convert from longs to Calendar objects ... only to end up back at a place where you're converting from Calendar objects to longs again. – scottb May 15 '13 at 21:00
@scottb - See my answer below, which does not mess with Calendar objects but uses only the Date members. – David R Tribble Mar 2 at 22:01

6 Answers 6

up vote 18 down vote accepted

If you want to compare the underlying binary (long int) values of the dates, you can do this:

public int compareTimes(Date d1, Date d2)
    int     t1;
    int     t2;

    t1 = (int) (d1.getTime() % (24*60*60*1000L));
    t2 = (int) (d2.getTime() % (24*60*60*1000L));
    return (t1 - t2);

Addendum 1

This technique has the advantage of speed, because it uses the underlying long value of the Date objects directly, instead of converting between ticks and calendar components (which is rather expensive and slow). It's also a lot simpler than messing with Calendar objects.

Addendum 2

The code above returns the time difference as an int, which will be correct for any pair of times, since it ignores the year/month/day portions of the dates entirely, and the difference between any two times is no more than 86,400,000 ms (= 1000 ms/sec × 60 sec/min × 60 min/hr × 24 hr/day).

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This is the best answer, imo. There is no need to use a complex Calendar API to compare time values within Date objects. – scottb May 15 '13 at 20:37
this is perfect and smart – Pi Horse Feb 20 at 1:18
thnx david, exactly what i was looking for :) – Beep.exe May 26 at 11:25
Very nice! Gooooooood! – Richard Sep 29 at 15:47
This does not always work. Example: currentDate: Tue Oct 20 16:28:57 MESZ 2015 and validFromTime: Tue Oct 20 01:30:00 MESZ 2015 returns the wrong result. – confile Oct 20 at 14:32

You may consider using Joda time's DateTimeComparator.getTimeOnlyInstance() for a comparator that will compare two Joda dates based only upon the times.

For example:

DateTimeComparator comparator = DateTimeComparator.getTimeOnlyInstance();, date2);


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If (java) time is the question, JODA is the answer :D – bbaja42 Oct 6 '11 at 15:01

Take a look at the Calendar class. It has support for extracting hours, minutes, and seconds from given Date's.

Calendar calendar = Calendar.getInstance();
int hour = calendar.get(Calendar.HOUR);
int minute = calendar.get(Calendar.MINUTE);
int second = calendar.get(Calendar.SECOND);
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In case you can't use JODA,

create 2 calendar objects, set year, month and day to 0.

Compare them....

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If JODA is not an option, one of the shortest approaches is probably to convert the time to strings and then compare them.

DateFormat df = new SimpleDateFormat("HHmmssSZ");
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Dont know how good practiced or efficent is this one but i've written a simple function using the Date object that serves my purposes. It returns a true or false is the first date value bigger than the second. The inputs d1 && d2 are Date objects.

function CompareTimes(d1, d2) {
             if (d1.getHours() < d2.getHours()) {
                 return false;
             if (d1.getHours() > d2.getHours()) {
                 return true;

             } else {
                 return (d1.getMinutes() > d2.getMinutes());
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