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input file contains

2012-12-23 23:59:59

I have to first convert time into sec and then combine with date ( addition of date as a decimal to time)

time (sec) = 23*3600 + 59*60 + 59 = 86400

date .23 ( take date only)

output should be 86400.23

Friends please help me. I am not able to get this working. Thanks in advance.

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2 Answers 2

See the following bash code :

d='2012-12-23 23:59:59'
IFS=: read h m s <<< "$d"
day=${d% *}; day=${day##*-}
echo $(( (${h#* } * 3600) + (m * 60) + s)).$day

Or with awk :

d='2012-12-23 23:59:59'
read day hour min sec < <(awk -F'[ :-]' '{print $3, $4, $5, $6}' <<< "$d")
echo $(( (hour * 3600) + (min * 60) + sec)).$day

Or simply :

 echo '2012-12-23 23:59:59' | awk -F'[ :-]' '{print ($4*3600)+($5*60)+$6"."$3}'
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You could use date command to validate/format the input:

#!/bin/bash
read datetime
date=$(date --date="$datetime" +%d)
time=$(date --date="$datetime" +"1970-01-01 %H:%M:%S UTC")
echo $(date --date="$time" +%s).$date
# -> 86399.23

demo

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