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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
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1  
On another note, could you not use the time command? –  anishsane Oct 11 '13 at 5:57
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6 Answers

up vote 43 down vote accepted

I guess the easiest solution would be to obtain the time as the number of seconds since the Unix epoch, and then subtract them, doing the time arithmetic before displaying.

date1=$(date +"%s")
date2=$(date +"%s")
diff=$(($date2-$date1))
echo "$(($diff / 60)) minutes and $(($diff % 60)) seconds elapsed."

Not the most elegant solution, probably, but works well.

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23  
+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 Jan 17 '12 at 23:58
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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)}'

Really simple, take the number of seconds at the start, then take the number of seconds at the end, and print the difference in minutes:seconds.

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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. –  Daniel Kamil Kozar Dec 21 '13 at 11:35
    
Your answer is correct too. Some people, like me, prefer to work with awk than with bash inconsistencies. –  Dorian Dec 22 '13 at 18:36
    
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. –  Daniel Kamil Kozar Dec 22 '13 at 19:00
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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

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I'd like to propose another way that avoid recalling date command. It may be helpful in case if you have already gathered timestamps in %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 $((DIFF%60))s"
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% start=$(date +%s)
% echo "Diff: $(date -d @$(($(date +%s)-$start)) +"%M minutes %S seconds")"
Diff: 00 minutes 11 seconds
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2  
It would be helpful to know what this answer does that the other answers don't do. –  Louis Dec 21 '13 at 15:58
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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"
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