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I want to record the time using System.currentTimeMillis() when a user begins something in my program. When he finishes, I will subtract the current System.currentTimeMillis() from the start variable, and I want to show them the time elapsed using a human readable format such as "XX hours, XX mins, XX seconds" or even "XX mins, XX seconds" because its not likely to take someone an hour.

What's the best way to do this?

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4  
If they take more than an hour you can still print something like; 90 mins, 53 secs. – Peter Lawrey Mar 24 '09 at 19:51
    
my answer comes 6 years late but I think it is more generic than accepted ones: stackoverflow.com/a/35082080/82609 – Sebastien Lorber Jan 29 at 10:25

20 Answers 20

up vote 786 down vote accepted

Since 1.5 there is the java.util.concurrent.TimeUnit class, use it like this:

String.format("%d min, %d sec", 
    TimeUnit.MILLISECONDS.toMinutes(millis),
    TimeUnit.MILLISECONDS.toSeconds(millis) - 
    TimeUnit.MINUTES.toSeconds(TimeUnit.MILLISECONDS.toMinutes(millis))
);

(Thanks to @Damian from comments) If you want to add a leading zero for values 0-9, just do:

String.format("%02d min, %02d sec", 
    TimeUnit.MILLISECONDS.toMinutes(millis),
    TimeUnit.MILLISECONDS.toSeconds(millis) - 
    TimeUnit.MINUTES.toSeconds(TimeUnit.MILLISECONDS.toMinutes(millis))
);

For Java versions below 1.5 or for systems that do not fully support the TimeUnit class (such as Android before API version 9), the following equations can be used:

int seconds = (int) (milliseconds / 1000) % 60 ;
int minutes = (int) ((milliseconds / (1000*60)) % 60);
int hours   = (int) ((milliseconds / (1000*60*60)) % 24);
//etc...
share|improve this answer
4  
int months =(int)((float)days / 30.4368499f); int years = (int)((float)days / 365.242199f); – schwiz May 26 '11 at 4:20
112  
For anyone that wants a leading 0 (e.g. for secs 0-9) use %02d instead of %d in the above example. – Damian Oct 26 '11 at 16:15
3  
I believe the toMinutes method was added only in Java 6 not 1.5 (5) as mentioned in the answer. – chrisjleu Oct 31 '11 at 17:16
5  
Id suggest to use mod 60 instead of subtracting the minutes, it looks cleaner. However, one needs to know that 1 min = 60 sec to do that... =) – Per Alexandersson Feb 12 '12 at 21:15
14  
For any Android devs toMinutes was added in API 9 / Gingerbread – scottyab Aug 19 '13 at 16:52

Based on @siddhadev's answer, I wrote a function to do this recently. Just thought I'd share in case anyone finds it useful:

   /**
     * Convert a millisecond duration to a string format
     * 
     * @param millis A duration to convert to a string form
     * @return A string of the form "X Days Y Hours Z Minutes A Seconds".
     */
    public static String getDurationBreakdown(long millis)
    {
        if(millis < 0)
        {
            throw new IllegalArgumentException("Duration must be greater than zero!");
        }

        long days = TimeUnit.MILLISECONDS.toDays(millis);
        millis -= TimeUnit.DAYS.toMillis(days);
        long hours = TimeUnit.MILLISECONDS.toHours(millis);
        millis -= TimeUnit.HOURS.toMillis(hours);
        long minutes = TimeUnit.MILLISECONDS.toMinutes(millis);
        millis -= TimeUnit.MINUTES.toMillis(minutes);
        long seconds = TimeUnit.MILLISECONDS.toSeconds(millis);

        StringBuilder sb = new StringBuilder(64);
        sb.append(days);
        sb.append(" Days ");
        sb.append(hours);
        sb.append(" Hours ");
        sb.append(minutes);
        sb.append(" Minutes ");
        sb.append(seconds);
        sb.append(" Seconds");

        return(sb.toString());
    }

Enjoy!

share|improve this answer
3  
Geez everyone forgot to subtract but you – danny117 Apr 22 '14 at 19:50
1  
You should do a checking there for single/multiple, in order to avoid this kind of situation : 1 Days 1 Hours 1 Minutes 1 Seconds – Daniel Jul 2 '14 at 7:21
    
Great function. Is there a reason sb.toString() is wrapped? – user2104648 Oct 13 '15 at 13:58
    
@user2104648 No, not at all. The return() syntax was a stylistic thing I picked up a long time ago (not sure where). I've since stopped doing it. It's just cosmetic. – Brent Nash Oct 13 '15 at 15:04
    
@BrentNash Ahh. Didn't consider that return could have been left over from something where it's a "function". – user2104648 Oct 13 '15 at 19:53
long time = 1536259;

return (new SimpleDateFormat("mm:ss:SSS")).format(new Date(time));

Prints:

25:36:259

share|improve this answer
    
I like the above approach the best if for nothing else its simplicity! Since we are dealing with times and durations I typically use Joda. An example if you have two DateTimes, start and end respectively: Duration dur = new Duration(start, end); long millis = dur.getMillis(); – Tech Trip Apr 2 '12 at 14:42
1  
I should have noted 2 ways to use Joda formatters. First variation on your theme: DateTimeFormat.forPattern("mm:ss:SSS").print(new DateTime(time)); Or convert the Duration to a Period that can automatically be printed using a Joda PeriodFormatter. The conversion could have a loss of precision if other than ISO chronology. Suppose a Duration represented by the variable duration. Period period = duration.toPeriod().normalizedStandard(PeriodType.time()); PeriodFormat.getDefault().print(period)) Output is awesome: 1 second and 581 milliseconds, answering the main question above. – Tech Trip Apr 2 '12 at 16:03
1  
A bit late here :) But wouldn't you need to put simpleDateFormat.setTimezone(TimeZone.getTimeZone("GMT")) here unless that is your actual timezone? – Olle Söderström Apr 19 '13 at 12:14
    
@OlleSöderström There is indeed an issue with timezone here. But setting it to GMT or UTC causes the hour part to be 12 instead of 0 for all durations shorter than 1 hour. – Episodex Jul 10 '15 at 13:27
    
Timezone isn't the only issue here... this answer is misleading and could seriously confuse Java newbies. Even ignoring the redundant outer brackets, the OP asked how to present a duration (a difference between two points in time, measured in ms). Calling that duration "time" and treating it as an offset since 1 Jan, 1970 just for the sake of formatting its smaller components is just... wrong imo. What's more, the very same approach had already been suggested 3 years earlier by this answer (see comments there for more details on timezone problems). – Amos M. Carpenter Apr 4 at 6:21

Uhm... how many milliseconds are in a second? And in a minute? Division is not that hard.

int seconds = (int) ((milliseconds / 1000) % 60);
int minutes = (int) ((milliseconds / 1000) / 60);

Continue like that for hours, days, weeks, months, year, decades, whatever.

share|improve this answer
    
Actually, doing this for anything longer than an hour is not a good idea since the results could be wrong/unintuitive when daylight savings time (days of 23 or 24 hours) or leap years are involved. If I read "X will happen in 1 year/month", I'd expect it to be the same date and time. – Michael Borgwardt Mar 9 '09 at 10:54
3  
System.currentTimeMillis() is immune against DST so this will not be confused by additional or missing hours. If you need to show the difference between two specific dates, you’re better off constructing Date objects with the given time and show the difference between those two. – Bombe Mar 9 '09 at 11:48
1  
Beyond weeks, it is undefined, since month length is variable. So indeed, you need to compute relative to a given time reference. – PhiLho Mar 10 '09 at 15:46
    
PhiLho: what are you saying? – Yan King Yin Oct 28 '15 at 7:11

I would not pull in the extra dependency just for that (division is not that hard, after all), but if you are using Commons Lang anyway, there are the DurationFormatUtils.

share|improve this answer
    
Great, I was just asking myself if there was a robust library that included this sort of things. – Lajcik Jan 18 '11 at 11:50

Either hand divisions, or use the SimpleDateFormat API.

long start = System.currentTimeMillis();
// do your work...
long elapsed = System.currentTimeMillis() - start;
DateFormat df = new SimpleDateFormat("HH 'hours', mm 'mins,' ss 'seconds'");
df.setTimeZone(TimeZone.getTimeZone("GMT+0"));
System.out.println(df.format(new Date(elapsed)));

Edit by Bombe: It has been shown in the comments that this approach only works for smaller durations (i.e. less than a day).

share|improve this answer
    
Wow. That is an evil, timezone-dependent hack. It will break mercilessly when you have a timezone offset that is not a multiple of 60 minutes (and we have a couple of those pesky 30-minute offset timezones in the world). – Bombe Mar 9 '09 at 8:51
    
Also, it will break just as bad as soon as you include the hours in the format string and are not at GMT+0, for the same reasons. – Bombe Mar 9 '09 at 8:52
    
We do? Really? Where? Not doubting you, just never heard of it before - some new pitfall to consider ;-) – Treb Mar 9 '09 at 8:53
    
Yes. Check “List of time zones” on Wikipedia, e.g. Nepal is at GMT+05:45. – Bombe Mar 9 '09 at 9:08
2  
cadrian, now it will only work for durations less than a day. The number of hours will always be between 0 and 23, inclusive. – Bombe Mar 9 '09 at 11:46

Just to add more info if you want to format like: HH:mm:ss

0 <= HH <= infinite

0 <= mm < 60

0 <= ss < 60

use this:

int h = (int) ((startTimeInMillis / 1000) / 3600);
int m = (int) (((startTimeInMillis / 1000) / 60) % 60);
int s = (int) ((startTimeInMillis / 1000) % 60);

I just had this issue now and figured this out

share|improve this answer
    
exactly what i was looking for. thanks. – dfetter88 Jul 22 '11 at 13:51

I think the best way is:

String.format("%d min, %d sec", 
    TimeUnit.MILLISECONDS.toSeconds(length)/60,
    TimeUnit.MILLISECONDS.toSeconds(length) % 60 );
share|improve this answer

Using the java.time package in Java 8:

Instant start = Instant.now();
Thread.sleep(63553);
Instant end = Instant.now();
System.out.println(Duration.between(start, end));

Output is in ISO 8601 Duration format: PT1M3.553S (1 minute and 3.553 seconds).

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Shortest solution:

Here's probably the shortest which also deals with time zones.

System.out.printf("%tT", millis-TimeZone.getDefault().getRawOffset());

Which outputs for example:

00:18:32

Explanation:

%tT is the time formatted for the 24-hour clock as %tH:%tM:%tS.

%tT also accepts longs as input, so no need to create a Date. printf() will simply print the time specified in milliseconds, but in the current time zone therefore we have to subtract the raw offset of the current time zone so that 0 milliseconds will be 0 hours and not the time offset value of the current time zone.

Note #1: If you need the result as a String, you can get it like this:

String t = String.format("%tT", millis-TimeZone.getDefault().getRawOffset());

Note #2: This only gives correct result if millis is less than a day because the day part is not included in the output.

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for Android below API 9

(String.format("%d hr %d min, %d sec", millis/(1000*60*60), (millis%(1000*60*60))/(1000*60), ((millis%(1000*60*60))%(1000*60))/1000)) 
share|improve this answer
    
Thanks this helped me ;) still need to show the days but I guess I'll figure that one out :P – D4ddy-LiLd4rk Jul 1 '14 at 17:04

For small times, less than an hour, I prefer:

long millis = ...

System.out.printf("%1$TM:%1$TS", millis);
// or
String str = String.format("%1$TM:%1$TS", millis);

for longer intervalls:

private static final long HOUR = TimeUnit.HOURS.toMillis(1);
...
if (millis < HOUR) {
    System.out.printf("%1$TM:%1$TS%n", millis);
} else {
    System.out.printf("%d:%2$TM:%2$TS%n", millis / HOUR, millis % HOUR);
}
share|improve this answer
    long startTime = System.currentTimeMillis();
    // do your work...
    long endTime=System.currentTimeMillis();
    long diff=endTime-startTime;       
    long hours=TimeUnit.MILLISECONDS.toHours(diff);
    diff=diff-(hours*60*60*1000);
    long min=TimeUnit.MILLISECONDS.toMinutes(diff);
    diff=diff-(min*60*1000);
    long seconds=TimeUnit.MILLISECONDS.toSeconds(diff);
    //hour, min and seconds variables contains the time elapsed on your work
share|improve this answer
2  
The formula on line 6 is wrong. diff=diff-(hours*60*1000); should be diff=diff-(hours*60*60*1000);. I tried editing it but StackOverflow's annoying edit policy says it's not enough characters for an edit. – quux00 Jul 23 '13 at 19:08
1  
@midpeter444 - You are right. That one corrected. Thank you – Fathah Rehman P Jul 23 '13 at 19:27

Joda-Time

Using Joda-Time:

DateTime startTime = new DateTime();

// do something

DateTime endTime = new DateTime();
Duration duration = new Duration(startTime, endTime);
Period period = duration.toPeriod().normalizedStandard(PeriodType.time());
System.out.println(PeriodFormat.getDefault().print(period));
share|improve this answer
    
No need for that PeriodFormat in the last line. Simply call Period::toString to get an ISO 8601 Duration string by default. – Basil Bourque Mar 13 at 23:35

Here is an answer based on Brent Nash answer, Hope that helps !

public static String getDurationBreakdown(long millis)
{
    String[] units = {" Days ", " Hours ", " Minutes ", " Seconds "};
    Long[] values = new Long[units.length];
    if(millis < 0)
    {
        throw new IllegalArgumentException("Duration must be greater than zero!");
    }

    values[0] = TimeUnit.MILLISECONDS.toDays(millis);
    millis -= TimeUnit.DAYS.toMillis(values[0]);
    values[1] = TimeUnit.MILLISECONDS.toHours(millis);
    millis -= TimeUnit.HOURS.toMillis(values[1]);
    values[2] = TimeUnit.MILLISECONDS.toMinutes(millis);
    millis -= TimeUnit.MINUTES.toMillis(values[2]);
    values[3] = TimeUnit.MILLISECONDS.toSeconds(millis);

    StringBuilder sb = new StringBuilder(64);
    boolean startPrinting = false;
    for(int i = 0; i < units.length; i++){
        if( !startPrinting && values[i] != 0)
            startPrinting = true;
        if(startPrinting){
            sb.append(values[i]);
            sb.append(units[i]);
        }
    }

    return(sb.toString());
}
share|improve this answer

If you know the time difference would be less than an hour, then you can use following code:

    Calendar c1 = Calendar.getInstance();
    Calendar c2 = Calendar.getInstance();

    c2.add(Calendar.MINUTE, 51);

    long diff = c2.getTimeInMillis() - c1.getTimeInMillis();

    c2.set(Calendar.MINUTE, 0);
    c2.set(Calendar.HOUR, 0);
    c2.set(Calendar.SECOND, 0);

    DateFormat df = new SimpleDateFormat("mm:ss");
    long diff1 = c2.getTimeInMillis() + diff;
    System.out.println(df.format(new Date(diff1)));

It will result to: 51:00

share|improve this answer

This answer is similar to some answers above. However, I feel that it would be beneficial because, unlike other answers, this will remove any extra commas or whitespace and handles abbreviation.

/**
 * Converts milliseconds to "x days, x hours, x mins, x secs"
 * 
 * @param millis
 *            The milliseconds
 * @param longFormat
 *            {@code true} to use "seconds" and "minutes" instead of "secs" and "mins"
 * @return A string representing how long in days/hours/minutes/seconds millis is.
 */
public static String millisToString(long millis, boolean longFormat) {
    if (millis < 1000) {
        return String.format("0 %s", longFormat ? "seconds" : "secs");
    }
    String[] units = {
            "day", "hour", longFormat ? "minute" : "min", longFormat ? "second" : "sec"
    };
    long[] times = new long[4];
    times[0] = TimeUnit.DAYS.convert(millis, TimeUnit.MILLISECONDS);
    millis -= TimeUnit.MILLISECONDS.convert(times[0], TimeUnit.DAYS);
    times[1] = TimeUnit.HOURS.convert(millis, TimeUnit.MILLISECONDS);
    millis -= TimeUnit.MILLISECONDS.convert(times[1], TimeUnit.HOURS);
    times[2] = TimeUnit.MINUTES.convert(millis, TimeUnit.MILLISECONDS);
    millis -= TimeUnit.MILLISECONDS.convert(times[2], TimeUnit.MINUTES);
    times[3] = TimeUnit.SECONDS.convert(millis, TimeUnit.MILLISECONDS);
    StringBuilder s = new StringBuilder();
    for (int i = 0; i < 4; i++) {
        if (times[i] > 0) {
            s.append(String.format("%d %s%s, ", times[i], units[i], times[i] == 1 ? "" : "s"));
        }
    }
    return s.toString().substring(0, s.length() - 2);
}

/**
 * Converts milliseconds to "x days, x hours, x mins, x secs"
 * 
 * @param millis
 *            The milliseconds
 * @return A string representing how long in days/hours/mins/secs millis is.
 */
public static String millisToString(long millis) {
    return millisToString(millis, false);
}
share|improve this answer

for correct strings ("1hour, 3sec", "3 min" but not "0 hour, 0 min, 3 sec") i write this code:

int seconds = (int)(millis / 1000) % 60 ;
int minutes = (int)((millis / (1000*60)) % 60);
int hours = (int)((millis / (1000*60*60)) % 24);
int days = (int)((millis / (1000*60*60*24)) % 365);
int years = (int)(millis / 1000*60*60*24*365);

ArrayList<String> timeArray = new ArrayList<String>();

if(years > 0)   
    timeArray.add(String.valueOf(years)   + "y");

if(days > 0)    
    timeArray.add(String.valueOf(days) + "d");

if(hours>0)   
    timeArray.add(String.valueOf(hours) + "h");

if(minutes>0) 
    timeArray.add(String.valueOf(minutes) + "min");

if(seconds>0) 
    timeArray.add(String.valueOf(seconds) + "sec");

String time = "";
for (int i = 0; i < timeArray.size(); i++) 
{
    time = time + timeArray.get(i);
    if (i != timeArray.size() - 1)
        time = time + ", ";
}

if (time == "")
  time = "0 sec";
share|improve this answer

I modified @MyKuLLSKI 's answer and added plurlization support. I took out seconds because I didn't need them, though feel free to re-add it if you need it.

public static String intervalToHumanReadableTime(int intervalMins) {

    if(intervalMins <= 0) {
        return "0";
    } else {

        long intervalMs = intervalMins * 60 * 1000;

        long days = TimeUnit.MILLISECONDS.toDays(intervalMs);
        intervalMs -= TimeUnit.DAYS.toMillis(days);
        long hours = TimeUnit.MILLISECONDS.toHours(intervalMs);
        intervalMs -= TimeUnit.HOURS.toMillis(hours);
        long minutes = TimeUnit.MILLISECONDS.toMinutes(intervalMs);

        StringBuilder sb = new StringBuilder(12);

        if (days >= 1) {
            sb.append(days).append(" day").append(pluralize(days)).append(", ");
        }

        if (hours >= 1) {
            sb.append(hours).append(" hour").append(pluralize(hours)).append(", ");
        }

        if (minutes >= 1) {
            sb.append(minutes).append(" minute").append(pluralize(minutes));
        } else {
            sb.delete(sb.length()-2, sb.length()-1);
        }

        return(sb.toString());          

    }

}

public static String pluralize(long val) {
    return (Math.round(val) > 1 ? "s" : "");
}
share|improve this answer

I have covered this in another answer but you can do:

public static Map<TimeUnit,Long> computeDiff(Date date1, Date date2) {
    long diffInMillies = date2.getTime() - date1.getTime();
    List<TimeUnit> units = new ArrayList<TimeUnit>(EnumSet.allOf(TimeUnit.class));
    Collections.reverse(units);
    Map<TimeUnit,Long> result = new LinkedHashMap<TimeUnit,Long>();
    long milliesRest = diffInMillies;
    for ( TimeUnit unit : units ) {
        long diff = unit.convert(milliesRest,TimeUnit.MILLISECONDS);
        long diffInMilliesForUnit = unit.toMillis(diff);
        milliesRest = milliesRest - diffInMilliesForUnit;
        result.put(unit,diff);
    }
    return result;
}

The output is something like Map:{DAYS=1, HOURS=3, MINUTES=46, SECONDS=40, MILLISECONDS=0, MICROSECONDS=0, NANOSECONDS=0}, with the units ordered.

It's up to you to figure out how to internationalize this data according to the target locale.

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protected by Flexo May 5 '12 at 11:27

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