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I am running some gnu time scripts which generates output of the form mm:ss.mm (minutes, seconds and miliseconds, for example 1:20.66) or hh:MM:ss (hours, minutes and seconds, for example 1:43:38). I want to convert this to seconds (in order to compare them and plot them in a graphic).

Which is the easiest way to do this using bash?

3 Answers 3

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$ TZ=utc date -d '1970-01-01 1:43:38' +%s
6218
1
  • 3
    Or put the timezone in the date string: “date -d '1970-01-01 1:43:38Z' +%s” Feb 8, 2012 at 7:45
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Assuming you can run the GNU date command:

date +'%s' -d "01:43:38.123"

If the script is generating "mm:ss.mm" you'll need to add "00:" to the beginning, or date will reject it.

If you're on a BSD system (including Mac OS X), you need to run date -j +'%s' "0143.38" unless you have GNU date installed with MacPorts or Homebrew or something.

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  • Just a note that date will run issues if you're trying to interpret standards like those seen in GTFS, where time can go beyond 23 hours. E.g., 27:05:00 is legitimate.
    – Liam
    Sep 14, 2015 at 15:54
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    (at least on my WSL ubuntu) I had to add 1970 and UTC in order to get number of seconds, otherwise date assumed that HH:MM:SS was "today". Example with dur=00:00:24.60: date +'%s' -d "$dur" #output something like 1588161624 / date +'%s' -d "01/01/1970 $dur UTC" #output 24 (note it does drop the decimals)
    – trs
    Apr 30, 2020 at 4:28
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And if you want pure Bash you can do something like

IFS=: read h m s <<<"${hms%.*}"
seconds=$((10#$s+10#$m*60+10#$h*3600))

The 10# part is mandatory to specify that the numbers are given in radix 10. Without this, you'd get errors if h, m or s is 08 or 09 (as Bash interprets numbers with a leading 0 in octal).

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