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I have two time strings; eg. "09:11" and "17:22" on the same day (format is hh:mm). How do I calculate the time difference in minutes between these two?

Can the standard date library do this?

Example:

#!/bin/bash

MPHR=60    # Minutes per hour.

CURRENT=$(date -u -d '2007-09-01 17:30:24' '+%F %T.%N %Z')
TARGET=$(date -u -d'2007-12-25 12:30:00' '+%F %T.%N %Z')

MINUTES=$(( $(diff) / $MPHR ))

Is there a simpler way of doing this given the hour and minute in hh:mm

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up vote 8 down vote accepted

A pure solution :

old=09:11
new=17:22

# feeding variables by using read and splitting with IFS
IFS=: read old_hour old_min <<< "$old"
IFS=: read hour min <<< "$new"

# convert hours to minutes
# the 10# is there to avoid errors with leading zeros
# by telling bash that we use base 10
total_old_minutes=$((10#$old_hour*60 + 10#$old_min))
total_minutes=$((10#$hour*60 + 10#$min))

echo "the difference is $((total_minutes - total_old_minutes)) minutes"

Another solution using date (we work with hour/minutes, so the date is not important)

old=09:11
new=17:22

IFS=: read old_hour old_min <<< "$old"
IFS=: read hour min <<< "$new"

# convert the date "1970-01-01 hour:min:00" in seconds from Unix EPOCH time
sec_old=$(date -d "1970-01-01 $old_hour:$old_min:00" +%s)
sec_new=$(date -d "1970-01-01 $hour:$min:00" +%s)

echo "the difference is $(( (sec_new - sec_old) / 60)) minutes"

See http://en.wikipedia.org/wiki/Unix_time

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Getting bash: 09: value too great for base (error token is "09") – liori Jan 13 '13 at 22:55
    
Yes, script modified accordingly – Gilles Quenot Jan 13 '13 at 22:57
    
Added date command solution – Gilles Quenot Jan 13 '13 at 23:19
    
In the date solution I get: usage: date [-jnu] [-d dst] [-r seconds] [-t west] [-v[+|-]val[ymwdHMS]] ... [-f fmt date | [[[mm]dd]HH]MM[[cc]yy][.ss]] [+format] – gorn Jan 14 '13 at 8:56
    
The first one works :) Thanks! But I think date is used incorrectly since I get usage errors – gorn Jan 14 '13 at 9:31

I would convert the dates to UNIX timestamps; you can subtract to get the difference in seconds, then divide by 60:

#!/bin/bash

MPHR=60    # Minutes per hour.

CURRENT=$(date +%s -d '2007-09-01 17:30:24')
TARGET=$(date +%s -d'2007-12-25 12:30:00')

MINUTES=$(( ($TARGET - $CURRENT) / $MPHR ))
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I wrapped this into a bash function, using dt() { echo $(( ( $(date +%s -d "$2") - $(date +%s -d "$1") ) / 60 )) ; } Then I can just go dt '2007-09-01 17:30:24' '2007-12-25 12:30:00' to get the answer. – Michael Anderson Jul 12 at 3:24
MPHR=60
CURRENT=09:11
TARGET=17:22
echo $(( ( 10#${TARGET:0:2} - 10#${CURRENT:0:2} ) * MPHR + 10#${TARGET:4} - 10#${CURRENT:4} ))
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Here is how I did it:

START=$(date +%s);
sleep 1; # Your stuff
END=$(date +%s);
echo $((END-START)) | awk '{printf "%d:%02d:%02d", $1/3600, ($1/60)%60, $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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@Dorian
If you just want to know how long a program took to run: time, man, man time!

Trivial example:

jonathan@Odin:~$ time sleep 1

real    0m1.001s
user    0m0.000s
sys     0m0.000s

OK, it doesn't give the result in seconds, but you can make it do so with a format string, or more simply with the POSIX compliance option:

jonathan@Odin:~$ time -p sleep 20
real 20.00
user 0.00
sys 0.00
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STARTTIME=$(date +%s)

YOUR CODES :

ENDTIME=$(date +%s)
secs=$(($ENDTIME - $STARTTIME))
printf 'Elapsed Time %dh:%dm:%ds\n' $(($secs/3600)) $(($secs%3600/60)) $(($secs%60)) 
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1  
I think you should edit your answer just in order it to be easier readable and understandable. Also include additional comments to clarify your answer. – ZygD Mar 28 '15 at 21:23

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