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I can do that in php with the following code:

$dt1 = '2011-11-11 11:11:11';
$t1 = strtotime($dt1);

$dt2 = date('Y-m-d H:00:00');
$t2 = strtotime($dt2);

$tDiff = $t2 - $t1;

$hDiff = round($tDiff/3600);

$hDiff will give me the result in hours.

How do I implement the above in bash shell?

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This is pretty hard to do in most shell environments. I'd stick to a php script if that's what you're already comfortable with. Perl and Python are also good at this sort of thing. –  bigendian Nov 14 '11 at 2:09
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1 Answer 1

up vote 10 down vote accepted

You could use date command to achieve this. man date will provide you with more details. A bash script could be something on these lines (seems to work fine on Ubuntu 10.04 bash 4.1.5):

#!/bin/bash                                                                                                                                                   

# Date 1
dt1="2011-11-11 11:11:11"
# Compute the seconds since epoch for date 1
t1=`date --date="$dt1" +%s`

# Date 2 : Current date
dt2=`date +%Y-%m-%d\ %H:%M:%S`
# Compute the seconds since epoch for date 2
t2=`date --date="$dt2" +%s`

# Compute the difference in dates in seconds
let "tDiff=$t2-$t1"
# Compute the approximate hour difference
let "hDiff=$tDiff/3600"

echo "Approx hour diff b/w $dt1 & $dt2 = $hDiff"

Hope this helps!

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Found this probably about the same time you posted: unix.com/tips-tutorials/… –  denormalizer Nov 14 '11 at 3:37
    
for who may confuse, there' s no such command called "let". Define a variable instead. –  tugcem Jun 11 at 12:58
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