Java 8: Difference between two LocalDateTime in multiple units
JavaDateDatetimeJava 8DifferenceJava Problem Overview
I am trying to calculate the difference between two LocalDateTime
.
The output needs to be of the format y years m months d days h hours m minutes s seconds
. Here is what I have written:
import java.time.Duration;
import java.time.Instant;
import java.time.LocalDateTime;
import java.time.Period;
import java.time.ZoneId;
public class Main {
static final int MINUTES_PER_HOUR = 60;
static final int SECONDS_PER_MINUTE = 60;
static final int SECONDS_PER_HOUR = SECONDS_PER_MINUTE * MINUTES_PER_HOUR;
public static void main(String[] args) {
LocalDateTime toDateTime = LocalDateTime.of(2014, 9, 9, 19, 46, 45);
LocalDateTime fromDateTime = LocalDateTime.of(1984, 12, 16, 7, 45, 55);
Period period = getPeriod(fromDateTime, toDateTime);
long time[] = getTime(fromDateTime, toDateTime);
System.out.println(period.getYears() + " years " +
period.getMonths() + " months " +
period.getDays() + " days " +
time[0] + " hours " +
time[1] + " minutes " +
time[2] + " seconds.");
}
private static Period getPeriod(LocalDateTime dob, LocalDateTime now) {
return Period.between(dob.toLocalDate(), now.toLocalDate());
}
private static long[] getTime(LocalDateTime dob, LocalDateTime now) {
LocalDateTime today = LocalDateTime.of(now.getYear(),
now.getMonthValue(), now.getDayOfMonth(), dob.getHour(), dob.getMinute(), dob.getSecond());
Duration duration = Duration.between(today, now);
long seconds = duration.getSeconds();
long hours = seconds / SECONDS_PER_HOUR;
long minutes = ((seconds % SECONDS_PER_HOUR) / SECONDS_PER_MINUTE);
long secs = (seconds % SECONDS_PER_MINUTE);
return new long[]{hours, minutes, secs};
}
}
The output that I am getting is 29 years 8 months 24 days 12 hours 0 minutes 50 seconds
. I have checked my result from this website (with values 12/16/1984 07:45:55
and 09/09/2014 19:46:45
). The following screenshot shows the output:
I am pretty sure that the fields after the month value is coming wrong from my code. Any suggestion would be very helpful.
Update
I have tested my result from another website and the result I got is different. Here it is: Calculate duration between two dates (result: 29 years, 8 months, 24 days, 12 hours, 0 minutes and 50 seconds).
Update
Since I got two different results from two different sites, I am wondering if the algorithm of my calculation is legitimate or not. If I use following two LocalDateTime
objects:
LocalDateTime toDateTime = LocalDateTime.of(2014, 9, 10, 6, 40, 45);
LocalDateTime fromDateTime = LocalDateTime.of(1984, 12, 16, 7, 45, 55);
Then the output is coming: 29 years 8 months 25 days -1 hours -5 minutes -10 seconds.
From this link it should be 29 years 8 months 24 days 22 hours, 54 minutes and 50 seconds
. So the algorithm needs to handle the negative numbers too.
Note the question is not about which site gave me what result, I need to know the right algorithm and need to have right results.
Java Solutions
Solution 1 - Java
I found the best way to do this is with ChronoUnit.
long minutes = ChronoUnit.MINUTES.between(fromDate, toDate);
long hours = ChronoUnit.HOURS.between(fromDate, toDate);
Additional documentation is here: https://docs.oracle.com/javase/tutorial/datetime/iso/period.html
Solution 2 - Java
Unfortunately, there doesn't seem to be a period class that spans time as well, so you might have to do the calculations on your own.
Fortunately, the date and time classes have a lot of utility methods that simplify that to some degree. Here's a way to calculate the difference although not necessarily the fastest:
LocalDateTime fromDateTime = LocalDateTime.of(1984, 12, 16, 7, 45, 55);
LocalDateTime toDateTime = LocalDateTime.of(2014, 9, 10, 6, 40, 45);
LocalDateTime tempDateTime = LocalDateTime.from( fromDateTime );
long years = tempDateTime.until( toDateTime, ChronoUnit.YEARS );
tempDateTime = tempDateTime.plusYears( years );
long months = tempDateTime.until( toDateTime, ChronoUnit.MONTHS );
tempDateTime = tempDateTime.plusMonths( months );
long days = tempDateTime.until( toDateTime, ChronoUnit.DAYS );
tempDateTime = tempDateTime.plusDays( days );
long hours = tempDateTime.until( toDateTime, ChronoUnit.HOURS );
tempDateTime = tempDateTime.plusHours( hours );
long minutes = tempDateTime.until( toDateTime, ChronoUnit.MINUTES );
tempDateTime = tempDateTime.plusMinutes( minutes );
long seconds = tempDateTime.until( toDateTime, ChronoUnit.SECONDS );
System.out.println( years + " years " +
months + " months " +
days + " days " +
hours + " hours " +
minutes + " minutes " +
seconds + " seconds.");
//prints: 29 years 8 months 24 days 22 hours 54 minutes 50 seconds.
The basic idea is this: create a temporary start date and get the full years to the end. Then adjust that date by the number of years so that the start date is less then a year from the end. Repeat that for each time unit in descending order.
Finally a disclaimer: I didn't take different timezones into account (both dates should be in the same timezone) and I also didn't test/check how daylight saving time or other changes in a calendar (like the timezone changes in Samoa) affect this calculation. So use with care.
Solution 3 - Java
It should be simpler!
Duration.between(startLocalDateTime, endLocalDateTime).toMillis();
You can convert millis to whatever unit you like:
String.format("%d minutes %d seconds",
TimeUnit.MILLISECONDS.toMinutes(millis),
TimeUnit.MILLISECONDS.toSeconds(millis) -
TimeUnit.MINUTES.toSeconds(TimeUnit.MILLISECONDS.toMinutes(millis)));
Solution 4 - Java
Here a single example using Duration and TimeUnit to get 'hh:mm:ss' format.
Duration dur = Duration.between(localDateTimeIni, localDateTimeEnd);
long millis = dur.toMillis();
String.format("%02d:%02d:%02d",
TimeUnit.MILLISECONDS.toHours(millis),
TimeUnit.MILLISECONDS.toMinutes(millis) -
TimeUnit.HOURS.toMinutes(TimeUnit.MILLISECONDS.toHours(millis)),
TimeUnit.MILLISECONDS.toSeconds(millis) -
TimeUnit.MINUTES.toSeconds(TimeUnit.MILLISECONDS.toMinutes(millis)));
Solution 5 - Java
TL;DR
// get the calendar period between the times (years, months & days)
Period period = Period.between(start.toLocalDate(), end.toLocalDate());
// make sure to get the floor of the number of days
period = period.minusDays(end.toLocalTime().compareTo(start.toLocalTime()) >= 0 ? 0 : 1);
// get the remainder as a duration (hours, minutes, etc.)
Duration duration = Duration.between(start, end);
// remove days, already counted in the period
duration = duration.minusDays(duration.toDaysPart());
and then use the methods period.getYears()
, period.getMonths()
, period.getDays()
, duration.toHoursPart()
, duration.toMinutesPart()
, duration.toSecondsPart()
.
Expanded answer
I'll answer the original question, i.e. how to get the time difference between two LocalDateTimes
in years, months, days, hours & minutes, such that the "sum" (see note below) of all the values for the different units equals the total temporal difference, and such that the value in each unit is smaller than the next bigger unit—i.e. minutes < 60
, hours < 24
, and so on.
Given two LocalDateTimes
start
and end
, e.g.
LocalDateTime start = LocalDateTime.of(2019, 11, 28, 17, 15);
LocalDateTime end = LocalDateTime.of(2020, 11, 30, 16, 44);
we can represent the absolute timespan between the two with a Duration
—perhaps using Duration.between(start, end)
. But the biggest unit we can extract out of a Duration
is days (as a temporal unit equivalent to 24h)—see the note below for an explanation. To use larger units (months, years) we can represent this Duration
with a pair of (Period
, Duration
), where the Period
measures the difference up to a precision of days and the Duration
represents the remainder.
To get the Period
:
Period period = Period.between(start.toLocalDate(), end.toLocalDate());
We need to be careful here, because a Period
is really a date difference, not an amount of time, and all its calculations are based on calendar dates (see the section below). For example, from 1st January 2000 at 23:59 to 2nd January 2000 at 00:01, a Period
would say there is a difference of 1 day, because that's the difference between the two dates, even though the time delta is less than 24h. So, if the time of day on the end datetime is earlier than the time of day on the start datetime, we need to subtract 1 from the day count, since it doesn't correspond to a complete 24h span (the corresponding remainder will be recorded by our Duration
):
period = period.minusDays(end.toLocalTime().compareTo(start.toLocalTime()) >= 0 ? 0 : 1);
To get the remainder, as a Duration
:
Duration duration = Duration.between(start, end);
Since the difference up to a precision of days is already taken care of by our period, we only need to keep smaller units (hours, minutes, etc.):
duration = duration.minusDays(duration.toDaysPart()); // essentially "duration (mod 1 day)"
Now we can simply use the methods defined on Period
and Duration
to extract the individual units:
System.out.printf(
"%d years, %d months, %d days, %d hours, %d minutes, %d seconds",
period.getYears(), period.getMonths(), period.getDays(),
duration.toHoursPart(), duration.toMinutesPart(), duration.toSecondsPart()
);
1 years, 0 months, 1 days, 23 hours, 29 minutes, 0 seconds
or, using the default format:
System.out.println(period + " + " + duration);
P1Y1D + PT23H29M
Note on years, months & days
Note that, in java.time
's conception, period "units" like "month" or "year" don't represent a fixed, absolute temporal value—they're date- and calendar-dependent, as the following example illustrates:
LocalDateTime
start1 = LocalDateTime.of(2020, 1, 1, 0, 0),
end1 = LocalDateTime.of(2021, 1, 1, 0, 0),
start2 = LocalDateTime.of(2021, 1, 1, 0, 0),
end2 = LocalDateTime.of(2022, 1, 1, 0, 0);
System.out.println(Period.between(start1.toLocalDate(), end1.toLocalDate()));
System.out.println(Duration.between(start1, end1).toDays());
System.out.println(Period.between(start2.toLocalDate(), end2.toLocalDate()));
System.out.println(Duration.between(start2, end2).toDays());
P1Y
366
P1Y
365
As another example, from 1st January 2000 at 23:59 to 2nd January 2000 at 00:01, a Period
would say there is a difference of 1 day, because that's the difference between the two dates, even though the time delta is less than 24h.
Solution 6 - Java
Here is a very simple answer to your question. It works.
import java.time.*;
import java.util.*;
import java.time.format.DateTimeFormatter;
import java.time.temporal.ChronoUnit;
public class MyClass {
public static void main(String args[]) {
DateTimeFormatter T = DateTimeFormatter.ofPattern("dd/MM/yyyy HH:mm");
Scanner h = new Scanner(System.in);
System.out.print("Enter date of birth[dd/mm/yyyy hh:mm]: ");
String b = h.nextLine();
LocalDateTime bd = LocalDateTime.parse(b,T);
LocalDateTime cd = LocalDateTime.now();
long minutes = ChronoUnit.MINUTES.between(bd, cd);
long hours = ChronoUnit.HOURS.between(bd, cd);
System.out.print("Age is: "+hours+ " hours, or " +minutes+ " minutes old");
}
}
Solution 7 - Java
And the version of @Thomas in Groovy with takes the desired units in a list instead of hardcoding the values. This implementation (which can easily ported to Java - I made the function declaration explicit) makes Thomas approach more reuseable.
def fromDateTime = LocalDateTime.of(1968, 6, 14, 0, 13, 0)
def toDateTime = LocalDateTime.now()
def listOfUnits = [ ChronoUnit.YEARS, ChronoUnit.MONTHS, ChronoUnit.DAYS, ChronoUnit.HOURS, ChronoUnit.MINUTES, ChronoUnit.SECONDS, ChronoUnit.MILLIS]
println calcDurationInTextualForm(listOfUnits, fromDateTime, toDateTime)
String calcDurationInTextualForm(List<ChronoUnit> listOfUnits, LocalDateTime ts, LocalDateTime to)
{
def result = []
listOfUnits.each { chronoUnit ->
long amount = ts.until(to, chronoUnit)
ts = ts.plus(amount, chronoUnit)
if (amount) {
result << "$amount ${chronoUnit.toString()}"
}
}
result.join(', ')
}
At the time of this writing,the code above returns 47 Years, 8 Months, 9 Days, 22 Hours, 52 Minutes, 7 Seconds, 140 Millis
. And, for @Gennady Kolomoets input, the code returns 23 Hours
.
When you provide a list of units it must be sorted by size of the units (biggest first):
def listOfUnits = [ChronoUnit.WEEKS, ChronoUnit.DAYS, ChronoUnit.HOURS]
// returns 2495 Weeks, 3 Days, 8 Hours
Solution 8 - Java
There is some problem for Tapas Bose code and Thomas code. If time differenсe is negative, array gets the negative values. For example if
LocalDateTime toDateTime = LocalDateTime.of(2014, 9, 10, 6, 46, 45);
LocalDateTime fromDateTime = LocalDateTime.of(2014, 9, 9, 7, 46, 45);
it returns 0 years 0 months 1 days -1 hours 0 minutes 0 seconds.
I think the right output is: 0 years 0 months 0 days 23 hours 0 minutes 0 seconds.
I propose to separate the LocalDateTime instances on LocalDate and LocalTime instances. After that we can obtain the Java 8 Period and Duration instances. The Duration instance is separated on the number of days and throughout-the-day time value (< 24h) with subsequent correction of the period value. When the second LocalTime value is before the firstLocalTime value, it is necessary to reduce the period for one day.
Here's my way to calculate the LocalDateTime difference:
private void getChronoUnitForSecondAfterFirst(LocalDateTime firstLocalDateTime, LocalDateTime secondLocalDateTime, long[] chronoUnits) {
/*Separate LocaldateTime on LocalDate and LocalTime*/
LocalDate firstLocalDate = firstLocalDateTime.toLocalDate();
LocalTime firstLocalTime = firstLocalDateTime.toLocalTime();
LocalDate secondLocalDate = secondLocalDateTime.toLocalDate();
LocalTime secondLocalTime = secondLocalDateTime.toLocalTime();
/*Calculate the time difference*/
Duration duration = Duration.between(firstLocalDateTime, secondLocalDateTime);
long durationDays = duration.toDays();
Duration throughoutTheDayDuration = duration.minusDays(durationDays);
Logger.getLogger(PeriodDuration.class.getName()).log(Level.INFO,
"Duration is: " + duration + " this is " + durationDays
+ " days and " + throughoutTheDayDuration + " time.");
Period period = Period.between(firstLocalDate, secondLocalDate);
/*Correct the date difference*/
if (secondLocalTime.isBefore(firstLocalTime)) {
period = period.minusDays(1);
Logger.getLogger(PeriodDuration.class.getName()).log(Level.INFO,
"minus 1 day");
}
Logger.getLogger(PeriodDuration.class.getName()).log(Level.INFO,
"Period between " + firstLocalDateTime + " and "
+ secondLocalDateTime + " is: " + period + " and duration is: "
+ throughoutTheDayDuration
+ "\n-----------------------------------------------------------------");
/*Calculate chrono unit values and write it in array*/
chronoUnits[0] = period.getYears();
chronoUnits[1] = period.getMonths();
chronoUnits[2] = period.getDays();
chronoUnits[3] = throughoutTheDayDuration.toHours();
chronoUnits[4] = throughoutTheDayDuration.toMinutes() % 60;
chronoUnits[5] = throughoutTheDayDuration.getSeconds() % 60;
}
The above method can be used to calculate the difference of any local date and time values, for example:
public long[] getChronoUnits(String firstLocalDateTimeString, String secondLocalDateTimeString) {
DateTimeFormatter formatter = DateTimeFormatter.ofPattern("yyyy-MM-dd HH:mm:ss");
LocalDateTime firstLocalDateTime = LocalDateTime.parse(firstLocalDateTimeString, formatter);
LocalDateTime secondLocalDateTime = LocalDateTime.parse(secondLocalDateTimeString, formatter);
long[] chronoUnits = new long[6];
if (secondLocalDateTime.isAfter(firstLocalDateTime)) {
getChronoUnitForSecondAfterFirst(firstLocalDateTime, secondLocalDateTime, chronoUnits);
} else {
getChronoUnitForSecondAfterFirst(secondLocalDateTime, firstLocalDateTime, chronoUnits);
}
return chronoUnits;
}
It is convenient to write a unit test for the above method (both of them are PeriodDuration class members). Here's the code:
@RunWith(Parameterized.class)
public class PeriodDurationTest {
private final String firstLocalDateTimeString;
private final String secondLocalDateTimeString;
private final long[] chronoUnits;
public PeriodDurationTest(String firstLocalDateTimeString, String secondLocalDateTimeString, long[] chronoUnits) {
this.firstLocalDateTimeString = firstLocalDateTimeString;
this.secondLocalDateTimeString = secondLocalDateTimeString;
this.chronoUnits = chronoUnits;
}
@Parameters
public static Collection<Object[]> periodValues() {
long[] chronoUnits0 = {0, 0, 0, 0, 0, 0};
long[] chronoUnits1 = {0, 0, 0, 1, 0, 0};
long[] chronoUnits2 = {0, 0, 0, 23, 0, 0};
long[] chronoUnits3 = {0, 0, 0, 1, 0, 0};
long[] chronoUnits4 = {0, 0, 0, 23, 0, 0};
long[] chronoUnits5 = {0, 0, 1, 23, 0, 0};
long[] chronoUnits6 = {29, 8, 24, 12, 0, 50};
long[] chronoUnits7 = {29, 8, 24, 12, 0, 50};
return Arrays.asList(new Object[][]{
{"2015-09-09 21:46:44", "2015-09-09 21:46:44", chronoUnits0},
{"2015-09-09 21:46:44", "2015-09-09 22:46:44", chronoUnits1},
{"2015-09-09 21:46:44", "2015-09-10 20:46:44", chronoUnits2},
{"2015-09-09 21:46:44", "2015-09-09 20:46:44", chronoUnits3},
{"2015-09-10 20:46:44", "2015-09-09 21:46:44", chronoUnits4},
{"2015-09-11 20:46:44", "2015-09-09 21:46:44", chronoUnits5},
{"1984-12-16 07:45:55", "2014-09-09 19:46:45", chronoUnits6},
{"2014-09-09 19:46:45", "1984-12-16 07:45:55", chronoUnits6}
});
}
@Test
public void testGetChronoUnits() {
PeriodDuration instance = new PeriodDuration();
long[] expResult = this.chronoUnits;
long[] result = instance.getChronoUnits(this.firstLocalDateTimeString, this.secondLocalDateTimeString);
assertArrayEquals(expResult, result);
}
}
All tests are successful whether or not the value of the first LocalDateTime is before and for any LocalTime values.
Solution 9 - Java
After more than five years I answer my question. I think that the problem with a negative duration can be solved by a simple correction:
LocalDateTime fromDateTime = LocalDateTime.of(2014, 9, 9, 7, 46, 45);
LocalDateTime toDateTime = LocalDateTime.of(2014, 9, 10, 6, 46, 45);
Period period = Period.between(fromDateTime.toLocalDate(), toDateTime.toLocalDate());
Duration duration = Duration.between(fromDateTime.toLocalTime(), toDateTime.toLocalTime());
if (duration.isNegative()) {
period = period.minusDays(1);
duration = duration.plusDays(1);
}
long seconds = duration.getSeconds();
long hours = seconds / SECONDS_PER_HOUR;
long minutes = ((seconds % SECONDS_PER_HOUR) / SECONDS_PER_MINUTE);
long secs = (seconds % SECONDS_PER_MINUTE);
long time[] = {hours, minutes, secs};
System.out.println(period.getYears() + " years "
+ period.getMonths() + " months "
+ period.getDays() + " days "
+ time[0] + " hours "
+ time[1] + " minutes "
+ time[2] + " seconds.");
Note: The site https://www.epochconverter.com/date-difference now correctly calculates the time difference.
Thank you all for your discussion and suggestions.
Solution 10 - Java
Joda-Time
Since many of the answers required API 26 support and my min API was 23, I solved it by below code :
import org.joda.time.Days
LocalDate startDate = Something
LocalDate endDate = Something
// The difference would be exclusive of both dates,
// so in most of use cases we may need to increment it by 1
Days.daysBetween(startDate, endDate).days