321

I print the start and end time using date +"%T", which results in something like:

10:33:56
10:36:10

How could I calculate and print the difference between these two?

I would like to get something like:

2m 14s
2
  • 6
    On another note, could you not use the time command?
    – anishsane
    Commented Oct 11, 2013 at 5:57
  • 1
    Use unix time instead, date +%s , then subtract to get the difference in seconds.
    – roblogic
    Commented Apr 21, 2017 at 4:07

21 Answers 21

687

Bash has a handy SECONDS builtin variable that tracks the number of seconds that have passed since the shell was started. This variable retains its properties when assigned to, and the value returned after the assignment is the number of seconds since the assignment plus the assigned value.

Thus, you can just set SECONDS to 0 before starting the timed event, simply read SECONDS after the event, and do the time arithmetic before displaying.

#!/usr/bin/env bash

SECONDS=0
# do some work
duration=$SECONDS
echo "$((duration / 60)) minutes and $((duration % 60)) seconds elapsed."

As this solution doesn't depend on date +%s (which is a GNU extension), it's portable to all systems supported by Bash.

Documentation:

SECONDS This variable expands to the number of seconds since the shell was started. Assignment to this variable resets the count to the value assigned, and the expanded value becomes the value assigned plus the number of seconds since the assignment. The number of seconds at shell invocation and the current time are always determined by querying the system clock. If SECONDS is unset, it loses its special properties, even if it is subsequently reset. [https://www.gnu.org/software/bash/manual/bash.html]

12
  • 71
    +1. Incidentally, you can trick date into performing the time arithmetic for you, by writing date -u -d @"$diff" +'%-Mm %-Ss'. (That interprets $diff as seconds-since-the-epoch, and computes the minutes and seconds in UTC.) That's probably not any more elegant, though, just better obfuscated. :-P
    – ruakh
    Commented Jan 17, 2012 at 23:58
  • 24
    Nice and simple. If someone needs hours: echo "$(($diff / 3600)) hours, $((($diff / 60) % 60)) minutes and $(($diff % 60)) seconds elapsed."
    – chus
    Commented May 19, 2015 at 10:13
  • 9
    It should read $(date -u +%s) to prevent a race condition on dates where the daylight saving time is switched. And beware of the evil leap seconds ;)
    – Tino
    Commented Oct 21, 2015 at 9:53
  • 4
    @daniel-kamil-kozar Nice find. However this is a bit fragile. There is only one such variable, so it cannot be used recursively to measure performance, and even worse, after unset SECONDS it is gone: echo $SECONDS; unset SECONDS; SECONDS=0; sleep 3; echo $SECONDS
    – Tino
    Commented Dec 15, 2015 at 7:28
  • 9
    @ParthianShot : I'm sorry that you think so. However, I believe that this answer is what most people need while searching for answers to a question like this one : to measure how much time passed between events, not to calculate time. Commented Feb 23, 2016 at 14:42
159

Seconds

To measure elapsed time (in seconds) we need:

  • an integer that represents the count of elapsed seconds and
  • a way to convert such integer to an usable format.

An integer value of elapsed seconds:

  • There are two Bash internal ways to find an integer value for the number of elapsed seconds:
  1. Bash variable SECONDS (if SECONDS is unset it loses its special property).

    • Setting the value of SECONDS to 0:

            SECONDS=0
            sleep 1  # Process to execute
            elapsedseconds=$SECONDS
      
    • Storing the value of the variable SECONDS at the start:

            a=$SECONDS
            sleep 1  # Process to execute
            elapsedseconds=$(( SECONDS - a ))
      
  2. Bash printf option %(datefmt)T:

         a="$(TZ=UTC0 printf '%(%s)T\n' '-1')"    ### `-1`  is the current time
         sleep 1                                  ### Process to execute
         elapsedseconds=$(( $(TZ=UTC0 printf '%(%s)T\n' '-1') - a ))
    

Convert such integer to an usable format

The bash internal printf can do that directly:

$ TZ=UTC0 printf '%(%H:%M:%S)T\n' 12345
03:25:45

similarly

$ elapsedseconds=$((12*60+34))
$ TZ=UTC0 printf '%(%H:%M:%S)T\n' "$elapsedseconds"
00:12:34

but this will fail for durations of more than 24 hours, as we actually print a wallclock time, not really a duration:

$ hours=30;mins=12;secs=24
$ elapsedseconds=$(( ((($hours*60)+$mins)*60)+$secs ))
$ TZ=UTC0 printf '%(%H:%M:%S)T\n' "$elapsedseconds"
06:12:24

For the lovers of detail, from bash-hackers.org:

%(FORMAT)T outputs the date-time string resulting from using FORMAT as a format string for strftime(3). The associated argument is the number of seconds since Epoch, or -1 (current time) or -2 (shell startup time). If no corresponding argument is supplied, the current time is used as default.

So you may want to just call textifyDuration $elpasedseconds where textifyDuration is yet another implementation of duration printing:

textifyDuration() {
   local duration=$1
   local shiff=$duration
   local secs=$((shiff % 60));  shiff=$((shiff / 60));
   local mins=$((shiff % 60));  shiff=$((shiff / 60));
   local hours=$shiff
   local splur; if [ $secs  -eq 1 ]; then splur=''; else splur='s'; fi
   local mplur; if [ $mins  -eq 1 ]; then mplur=''; else mplur='s'; fi
   local hplur; if [ $hours -eq 1 ]; then hplur=''; else hplur='s'; fi
   if [[ $hours -gt 0 ]]; then
      txt="$hours hour$hplur, $mins minute$mplur, $secs second$splur"
   elif [[ $mins -gt 0 ]]; then
      txt="$mins minute$mplur, $secs second$splur"
   else
      txt="$secs second$splur"
   fi
   echo "$txt (from $duration seconds)"
}

GNU date

To get formatted time we should use an external tool (GNU date) in several ways to get up to almost a year length and including nanoseconds.

Math inside date.

There isn't any need for external arithmetic, do it all in one step inside date:

date -u -d "0 $FinalDate seconds - $StartDate seconds" +"%H:%M:%S"

Yes, there is a 0 zero in the command string. It is needed.

That's assuming you could change the date +"%T" command to a date +"%s" command so the values will be stored (printed) in seconds.

Note that the command is limited to:

  • Positive values of $StartDate and $FinalDate seconds.
  • The value in $FinalDate is bigger (later in time) than $StartDate.
  • Time difference smaller than 24 hours.
  • You accept an output format with Hours, Minutes and Seconds. Very easy to change.
  • It is acceptable to use -u UTC times. To avoid "DST" and local time corrections.

If you must use the 10:33:56 string, well, just convert it to seconds. Also, the word seconds could be abbreviated as sec:

string1="10:33:56"
string2="10:36:10"
StartDate=$(date -u -d "$string1" +"%s")
FinalDate=$(date -u -d "$string2" +"%s")
date -u -d "0 $FinalDate sec - $StartDate sec" +"%H:%M:%S"

Note that the seconds time conversion (as presented above) is relative to the start of "this" day (Today).


The concept could be extended to nanoseconds, like this:

string1="10:33:56.5400022"
string2="10:36:10.8800056"
StartDate=$(date -u -d "$string1" +"%s.%N")
FinalDate=$(date -u -d "$string2" +"%s.%N")
date -u -d "0 $FinalDate sec - $StartDate sec" +"%H:%M:%S.%N"

If is required to calculate longer (up to 364 days) time differences, we must use the start of (some) year as reference and the format value %j (the day number in the year):

Similar to:

string1="+10 days 10:33:56.5400022"
string2="+35 days 10:36:10.8800056"
StartDate=$(date -u -d "2000/1/1 $string1" +"%s.%N")
FinalDate=$(date -u -d "2000/1/1 $string2" +"%s.%N")
date -u -d "2000/1/1 $FinalDate sec - $StartDate sec" +"%j days %H:%M:%S.%N"

Output:
026 days 00:02:14.340003400

Sadly, in this case, we need to manually subtract 1 ONE from the number of days. The date command view the first day of the year as 1. It is not that difficult...

a=( $(date -u -d "2000/1/1 $FinalDate sec - $StartDate sec" +"%j days %H:%M:%S.%N") )
a[0]=$((10#${a[0]}-1)); echo "${a[@]}"

The use of long number of seconds is valid and documented on 21.1.7 Examples of date.


BusyBox date

A tool used in smaller devices (a very small executable to install): BusyBox.

Either make a link to BusyBox called date:

$ ln -s /bin/busybox date

Use it then by calling this date (place it in a PATH included directory).

Or make an alias like:

$ alias date='busybox date'

BusyBox date has a nice option: -D to receive the format of the input time.

That opens up a lot of formats to be used as time. Using the -D option we can convert the time 10:33:56 directly:

date -D "%H:%M:%S" -d "10:33:56" +"%Y.%m.%d-%H:%M:%S"

And as you can see from the output of the Command above, the day is assumed to be "today". To get the time starting on epoch:

$ string1="10:33:56"
$ date -u -D "%Y.%m.%d-%H:%M:%S" -d "1970.01.01-$string1" +"%Y.%m.%d-%H:%M:%S"
1970.01.01-10:33:56

BusyBox date can even receive the time (in the format above) without -D:

$ date -u -d "1970.01.01-$string1" +"%Y.%m.%d-%H:%M:%S"
1970.01.01-10:33:56

And the output format could even be seconds since epoch.

$ date -u -d "1970.01.01-$string1" +"%s"
52436

For both times, and a little bash math (BusyBox can not do the math, yet):

string1="10:33:56"
string2="10:36:10"
t1=$(date -u -d "1970.01.01-$string1" +"%s")
t2=$(date -u -d "1970.01.01-$string2" +"%s")
echo $(( t2 - t1 ))

Or formatted:

$ date -u -D "%s" -d "$(( t2 - t1 ))" +"%H:%M:%S"
00:02:14
2
  • 10
    This is such an amazing answer covered a lot of bases and with fine explanations. Thank you!
    – Devy
    Commented Jun 23, 2016 at 20:49
  • I had to look up the %(FORMAT)T string passed to the printf command integrated in bash. From bash-hackers.org: %(FORMAT)T output the date-time string resulting from using FORMAT as a format string for strftime(3). The associated argument is the number of seconds since Epoch, or -1 (current time) or -2 (shell startup time). If no corresponding argument is supplies, the current time is used as default. That's esoteric. In this case, %s as given to strftime(3) is "the number of seconds since the epoch". Commented May 26, 2018 at 9:24
50

Here is how I did it:

START=$(date +%s);
sleep 1; # Your stuff
END=$(date +%s);
echo $((END-START)) | awk '{print int($1/60)":"int($1%60)}'

It is really simple. Take the number of seconds at the start, take the number of seconds at the end, and print the difference in minutes:seconds.

6
  • 8
    How is that any different from my solution? I really can't see the benefit from calling awk in this case, since Bash handles integer arithmetic equally well. Commented Dec 21, 2013 at 11:35
  • 3
    Your answer is correct too. Some people, like me, prefer to work with awk than with bash inconsistencies.
    – Dorian
    Commented Dec 22, 2013 at 18:36
  • 2
    Could you elaborate some more about the inconsistencies in Bash concerning integer arithmetic? I'd like to know more about this, since I wasn't aware of any. Commented Dec 22, 2013 at 19:00
  • 17
    I was just looking for this. I don't understand the criticism to this answer. I like to see more than one solution to a problem. And, I am one that prefers awk commands to bash (if for nothing else, because awk works in other shells). I liked this solution better. But that is my personal opinion.
    – rpsml
    Commented Jun 25, 2014 at 8:16
  • 6
    Leading zeros: echo $((END-START)) | awk '{printf "%02d:%02d\n",int($1/60), int($1%60)}' Commented Aug 4, 2014 at 20:07
21

Another option is to use datediff from dateutils (http://www.fresse.org/dateutils/#datediff):

$ datediff 10:33:56 10:36:10
134s

$ datediff 10:33:56 10:36:10 -f%H:%M:%S
0:2:14

$ datediff 10:33:56 10:36:10 -f%0H:%0M:%0S
00:02:14

You could also use Gawk. mawk 1.3.4 also has strftime and mktime, but older versions of mawk and nawk don't.

$ TZ=UTC0 awk 'BEGIN{print strftime("%T",mktime("1970 1 1 10 36 10")-mktime("1970 1 1 10 33 56"))}'

00:02:14

Or here's another way to do it with GNU date:

$ date -ud@$(($(date -ud'1970-01-01 10:36:10' +%s)-$(date -ud'1970-01-01 10:33:56' +%s))) +%T

00:02:14
3
  • 1
    I was looking for something like your GNU date method. Genius.
    – Haohmaru
    Commented Aug 7, 2017 at 11:12
  • Please delete my comment...sorry
    – Bill Gale
    Commented Feb 7, 2018 at 18:13
  • 1
    After installing dateutils via apt, there was no datediff command - had to use dateutils.ddiff.
    – Suzana
    Commented Mar 10, 2020 at 14:48
12

I'd like to propose another way that avoids recalling the date command. It may be helpful in case if you have already gathered timestamps in the %T date format:

ts_get_sec()
{
  read -r h m s <<< $(echo $1 | tr ':' ' ' )
  echo $(((h*60*60)+(m*60)+s))
}

start_ts=10:33:56
stop_ts=10:36:10

START=$(ts_get_sec $start_ts)
STOP=$(ts_get_sec $stop_ts)
DIFF=$((STOP-START))

echo "$((DIFF/60))m $((DIFF%60))s"

We can even handle milliseconds in the same way.

ts_get_msec()
{
  read -r h m s ms <<< $(echo $1 | tr '.:' ' ' )
  echo $(((h*60*60*1000)+(m*60*1000)+(s*1000)+ms))
}

start_ts=10:33:56.104
stop_ts=10:36:10.102

START=$(ts_get_msec $start_ts)
STOP=$(ts_get_msec $stop_ts)
DIFF=$((STOP-START))

min=$((DIFF/(60*1000)))
sec=$(((DIFF%(60*1000))/1000))
ms=$(((DIFF%(60*1000))%1000))

echo "${min}:${sec}.$ms"
3
  • 1
    Is there a way to handle millisecons, e.g. 10:33:56.104 Commented May 21, 2014 at 7:08
  • Millisecond handling misbehaves if the millisecond field begins with a zero. For instance ms="033" will give trailing digits of "027" because the ms field is being interpreted as octal. changing "echo" ... "+ms))" to ... "+${ms##+(0)}))" will fix this as long as "shopt -s extglob" appears somewhere above this in the script. One should probably strip leading zeroes from h, m, and s as well... Commented Jul 8, 2015 at 21:23
  • 3
    echo $(((60*60*$((10#$h)))+(60*$((10#$m)))+$((10#$s)))) worked for me since I got value too great for base (error token is "08")
    – Niklas
    Commented Mar 1, 2016 at 15:12
10

Following on from Daniel Kamil Kozar's answer, to show hours/minutes/seconds:

echo "Duration: $(($DIFF / 3600 )) hours $((($DIFF % 3600) / 60)) minutes $(($DIFF % 60)) seconds"

So the full script would be:

date1=$(date +"%s")
date2=$(date +"%s")
DIFF=$(($date2-$date1))
echo "Duration: $(($DIFF / 3600 )) hours $((($DIFF % 3600) / 60)) minutes $(($DIFF % 60)) seconds"
1
  • Many solutions don't work for time intervals that exceed 86399 seconds. This one has no such limitation.
    – Jeff Holt
    Commented Apr 14, 2022 at 4:17
7

As of date (GNU Core Utilities) 7.4, you can now use -d to do arithmetic:

$ date -d -30days

Sat Jun 28 13:36:35 UTC 2014

$ date -d tomorrow

Tue Jul 29 13:40:55 UTC 2014

The units you can use are days, years, months, hours, minutes, and seconds :

$ date -d tomorrow+2days-10minutes

Thu Jul 31 13:33:02 UTC 2014
0
7

Here's some magic:

time1=14:30
time2=$( date +%H:%M ) # 16:00
diff=$(  echo "$time2 - $time1"  | sed 's%:%+(1/60)*%g' | bc -l )
echo $diff hours
# outputs 1.5 hours

sed replaces a : with a formula to convert to 1/60. Then the time calculation that is made by bc.

7

Here is a solution using only the date commands capabilities using "ago", and not using a second variable to store the finish time:

#!/bin/bash

# Save the current time
start_time=$( date +%s.%N )

# Tested program
sleep 1

# The current time after the program has finished
# minus the time when we started, in seconds.nanoseconds
elapsed_time=$( date +%s.%N --date="$start_time seconds ago" )

echo elapsed_time: $elapsed_time

This gives:

$ ./time_elapsed.sh

elapsed_time: 1.002257120
1
  • You can also add a printf to format to two decimal places. Eg: % echo elapsed: $(printf '%.2f' ${elapsed_time})s Commented Jul 3, 2023 at 19:16
3
% start=$(date +%s)
% echo "Diff: $(date -d @$(($(date +%s)-$start)) +"%M minutes %S seconds")"
Diff: 00 minutes 11 seconds
2
  • 7
    It would be helpful to know what this answer does that the other answers don't do.
    – Louis
    Commented Dec 21, 2013 at 15:58
  • It lets you easily output the duration in any format allowed by date. Commented Apr 22, 2015 at 21:18
3

Or wrap it up a bit

alias timerstart='starttime=$(date +"%s")'
alias timerstop='echo seconds=$(($(date +"%s")-$starttime))'

Then this works.

timerstart; sleep 2; timerstop
seconds=2
3

date can give you the difference and format it for you (OS X options shown)

date -ujf%s $(($(date -jf%T "10:36:10" +%s) - $(date -jf%T "10:33:56" +%s))) +%T
# 00:02:14

date -ujf%s $(($(date -jf%T "10:36:10" +%s) - $(date -jf%T "10:33:56" +%s))) \
    +'%-Hh %-Mm %-Ss'
# 0h 2m 14s

Some string processing can remove those empty values

date -ujf%s $(($(date -jf%T "10:36:10" +%s) - $(date -jf%T "10:33:56" +%s))) \
    +'%-Hh %-Mm %-Ss' | sed "s/[[:<:]]0[hms] *//g"
# 2m 14s

This won't work if you place the earlier time first. If you need to handle that, change $(($(date ...) - $(date ...))) to $(echo $(date ...) - $(date ...) | bc | tr -d -)

3
#!/bin/bash

START_TIME=$(date +%s)

sleep 4

echo "Total time elapsed: $(date -ud "@$(($(date +%s) - $START_TIME))" +%T) (HH:MM:SS)"
$ ./total_time_elapsed.sh 
Total time elapsed: 00:00:04 (HH:MM:SS)
0
3

Define this function (say, in ~/.bashrc):

time::clock() {
    [ -z "$ts" ]&&{ ts=`date +%s%N`;return;}||te=`date +%s%N`
    printf "%6.4f" $(echo $((te-ts))/1000000000 | bc -l)
    unset ts te
}

Now you can measure execution time of parts of your scripts:

$ cat script.sh
# ... code ...
time::clock
sleep 0.5
echo "Total time: ${time::clock}"
# ... more code ...

$ ./script.sh
Total time: 0.5060

It is very useful to find execution bottlenecks.

1
  • awesome - with sub-second accuracy.
    – Konchog
    Commented Mar 14, 2023 at 13:25
2

Generalizing nisetama's solution using GNU date (Ubuntu 14.04 LTS (Trusty Tahr)):

start=`date`
# <processing code>
stop=`date`
duration=`date -ud@$(($(date -ud"$stop" +%s)-$(date -ud"$start" +%s))) +%T`

echo $start
echo $stop
echo $duration

yielding:

Wed Feb 7 12:31:16 CST 2018
Wed Feb 7 12:32:25 CST 2018
00:01:09
0
1

With GNU Units:

units

Output:

2411 units, 71 prefixes, 33 nonlinear units
You have: (10hr+36min+10s)-(10hr+33min+56s)
You want: s
    * 134
    / 0.0074626866
You have: (10hr+36min+10s)-(10hr+33min+56s)
You want: min
    * 2.2333333
    / 0.44776119
1
1

I needed a time difference script for use with mencoder (its --endpos is relative), and my solution is to call a Python script:

$ ./timediff.py 1:10:15 2:12:44
1:02:29

Fractions of seconds are also supported:

$ echo "diff is `./timediff.py 10:51.6 12:44` (in hh:mm:ss format)"
diff is 0:01:52.4 (in hh:mm:ss format)

And it can tell you that the difference between 200 and 120 is 1h 20m:

$ ./timediff.py 120:0 200:0
1:20:0

And it can convert any (probably fractional) number of seconds or minutes or hours to hh:mm:ss:

$ ./timediff.py 0 3600
1:00:0

$ ./timediff.py 0 3.25:0:0
3:15:0

timediff.py:

#!/usr/bin/python

import sys

def x60(h, m):
    return 60*float(h) + float(m)

def seconds(time):
    try:
       h, m, s = time.split(':')
       return x60(x60(h, m), s)
    except ValueError:
       try:
          m, s = time.split(':')
          return x60(m, s)
       except ValueError:
          return float(time)

def difftime(start, end):
    d = seconds(end) - seconds(start)
    print '%d:%02d:%s' % (d/3600,d/60%60,('%02f' % (d%60)).rstrip('0').rstrip('.'))

if __name__ == "__main__":
   difftime(sys.argv[1], sys.argv[2])
0

I came across it today while working on a script that would take dates and times from a log file and compute the delta. The script below is certainly overkill, and I highly recommend checking my logic and maths.

#!/bin/bash

dTime=""
tmp=""

#firstEntry="$(head -n 1 "$LOG" | sed 's/.*] \([0-9: -]\+\).*/\1/')"
firstEntry="2013-01-16 01:56:37"
#lastEntry="$(tac "$LOG" | head -n 1 | sed 's/.*] \([0-9: -]\+\).*/\1/')"
lastEntry="2014-09-17 18:24:02"

# I like to make the variables easier to parse
firstEntry="${firstEntry//-/ }"
lastEntry="${lastEntry//-/ }"
firstEntry="${firstEntry//:/ }"
lastEntry="${lastEntry//:/ }"

# Remove the following lines in production
echo "$lastEntry"
echo "$firstEntry"

# Compute days in last entry
for i in `seq 1 $(echo $lastEntry|awk '{print $2}')`; do {
  case "$i" in
   1|3|5|7|8|10|12 )
    dTime=$(($dTime+31))
    ;;
   4|6|9|11 )
    dTime=$(($dTime+30))
    ;;
   2 )
    dTime=$(($dTime+28))
    ;;
  esac
} done

# Do leap year calculations for all years between first and last entry
for i in `seq $(echo $firstEntry|awk '{print $1}') $(echo $lastEntry|awk '{print $1}')`; do {
  if [ $(($i%4)) -eq 0 ] && [ $(($i%100)) -eq 0 ] && [ $(($i%400)) -eq 0 ]; then {
    if [ "$i" = "$(echo $firstEntry|awk '{print $1}')" ] && [ $(echo $firstEntry|awk '{print $2}') -lt 2 ]; then {
      dTime=$(($dTime+1))
    } elif [ $(echo $firstEntry|awk '{print $2}') -eq 2 ] && [ $(echo $firstEntry|awk '{print $3}') -lt 29 ]; then {
      dTime=$(($dTime+1))
    } fi
  } elif [ $(($i%4)) -eq 0 ] && [ $(($i%100)) -ne 0 ]; then {
    if [ "$i" = "$(echo $lastEntry|awk '{print $1}')" ] && [ $(echo $lastEntry|awk '{print $2}') -gt 2 ]; then {
      dTime=$(($dTime+1))
    } elif [ $(echo $lastEntry|awk '{print $2}') -eq 2 ] && [ $(echo $lastEntry|awk '{print $3}') -ne 29 ]; then {
      dTime=$(($dTime+1))
    } fi
  } fi
} done

# Subtract days in first entry
for i in `seq 1 $(echo $firstEntry|awk '{print $2}')`; do {
  case "$i" in
   1|3|5|7|8|10|12 )
    dTime=$(($dTime-31))
    ;;
   4|6|9|11 )
    dTime=$(($dTime-30))
    ;;
   2 )
    dTime=$(($dTime-28))
    ;;
  esac
} done

dTime=$(($dTime+$(echo $lastEntry|awk '{print $3}')-$(echo $firstEntry|awk '{print $3}')))

# The above gives number of days for sample. Now
# we need hours, minutes, and seconds
# As a bit of hackery I just put the stuff
# in the best order for use in a for loop
dTime="$(($(echo $lastEntry|awk '{print $6}')-$(echo $firstEntry|awk '{print $6}'))) $(($(echo $lastEntry|awk '{print $5}')-$(echo $firstEntry|awk '{print $5}'))) $(($(echo $lastEntry|awk '{print $4}')-$(echo $firstEntry|awk '{print $4}'))) $dTime"
tmp=1
for i in $dTime; do {
  if [ $i -lt 0 ]; then {
    case "$tmp" in
     1 )
      tmp="$(($(echo $dTime|awk '{print $1}')+60)) $(($(echo $dTime|awk '{print $2}')-1))"
      dTime="$tmp $(echo $dTime|awk '{print $3" "$4}')"
      tmp=1
      ;;
     2 )
      tmp="$(($(echo $dTime|awk '{print $2}')+60)) $(($(echo $dTime|awk '{print $3}')-1))"
      dTime="$(echo $dTime|awk '{print $1}') $tmp $(echo $dTime|awk '{print $4}')"
      tmp=2
      ;;
     3 )
      tmp="$(($(echo $dTime|awk '{print $3}')+24)) $(($(echo $dTime|awk '{print $4}')-1))"
      dTime="$(echo $dTime|awk '{print $1" "$2}') $tmp"
      tmp=3
      ;;
    esac
  } fi
  tmp=$(($tmp+1))
} done

echo "The sample time is $(echo $dTime|awk '{print $4}') days, $(echo $dTime|awk '{print $3}') hours, $(echo $dTime|awk '{print $2}') minutes, and $(echo $dTime|awk '{print $1}') seconds."

You will get output as follows.

2012 10 16 01 56 37
2014 09 17 18 24 02
The sample time is 700 days, 16 hours, 27 minutes, and 25 seconds.

I modified the script a bit to make it standalone (i.e., just set variable values), but maybe the general idea comes across as well. You'd might want some additional error checking for negative values.

1
0

If you already have the time differential calculated, and they're shorter than 1 day, here's a really fringe use case of bc to kinda-sorta format the output into a

  • HH MM SS.xxxx

24-hour format, keeping in mind that the digits to right of decimal point are printed in base 60

jot -w 'obase = 60; %.3f' - 1.3219567 300 73.6543211 | bc 
       01.19 19
    01 14.58 33
    02 28.37 51
    03 42.17 06  # 3 mins 42 secs 
    04 55.56 20  
          ...
          ...
 19 38 10.54 32  # 19 hrs 38 mins 10 secs 
                 #
                 # (or 7:38pm, if it's representing absolute time)

But it's definitely a quick-n-dirty way to get a ballpark figure.

0

I can't believe you guys have no clear answer for milliseconds:

get_msec() {
    echo $(($(date +%s%N)/1000000))
}

START=$(get_msec)
echo "OMG"
echo "DURATION=" $(( $(get_msec)-$START )) "ms"
-2

Here's my Bash implementation (with bits taken from other Stack Overflow answers ;-)

function countTimeDiff() {
    timeA=$1 # 09:59:35
    timeB=$2 # 17:32:55

    # feeding variables by using read and splitting with IFS
    IFS=: read ah am as <<< "$timeA"
    IFS=: read bh bm bs <<< "$timeB"

    # Convert hours to minutes.
    # The 10# is there to avoid errors with leading zeros
    # by telling bash that we use base 10
    secondsA=$((10#$ah*60*60 + 10#$am*60 + 10#$as))
    secondsB=$((10#$bh*60*60 + 10#$bm*60 + 10#$bs))
    DIFF_SEC=$((secondsB - secondsA))
    echo "The difference is $DIFF_SEC seconds.";

    SEC=$(($DIFF_SEC%60))
    MIN=$((($DIFF_SEC-$SEC)%3600/60))
    HRS=$((($DIFF_SEC-$MIN*60)/3600))
    TIME_DIFF="$HRS:$MIN:$SEC";
    echo $TIME_DIFF;
}

$ countTimeDiff 2:15:55 2:55:16
The difference is 2361 seconds.
0:39:21

It was not tested and may be buggy.

0

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