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Hy!

I want to calculate in bash the average time spent by several commands. The output of time command is min:sec.milisec

I don't know how to add two outputs of this kind in bash and in final to calculate the average.

I tried to convert the output with date but the output is "date: invalid date `0:01.00'"

Thanks

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2 Answers 2

up vote 3 down vote accepted

This is a three part answer

Part one

First, use the TIMEFORMAT variable to output only seconds elapsed. Then you can add this directly

From man bash

TIMEFORMAT The value of this parameter is used as a format string specifying how the timing information for pipelines prefixed with the time reserved word should be displayed. The % character introduces an escape sequence that is expanded to a time value or other information. The escape sequences and their meanings are as follows; the braces denote optional portions.

Here is an example which outputs only seconds with a precision of 0, i.e. no decimal point. Read part three why that's important.

TIMEFORMAT='%0R'; time sleep 1
1

Part two

Second, how do we capture the output of time? It's actually a bit tricky, here's how you do capture the time from the command above

TIMEFORMAT='%0R'; time1=$( { time sleep 1; } 2>&1 )

Part three

How do we add the times together and get the average?

In bash we use the $(( )) construct to do math. Note that bash does not natively support floating point so you will be doing integer division (hence the precision 0.) Here is a script that will capture the time from two commands and output each of the individual times and their average

#!/bin/bash

TIMEFORMAT='%0R'
time1=$( { time sleep 1; } 2>&1 )
time2=$( { time sleep 4; } 2>&1 )
ave=$(( (time1 + time2) / 2))

echo "time1 is $time1 | time2 is $time2 | average is $ave"

Output

time1 is 1 | time2 is 4 | average is 2

If integer division is a non-starter for you and you want precision, as long as you don't mind calling the external binary bc, you can do this quite easily.

#!/bin/bash

TIMEFORMAT='%3R'
time1=$( { time sleep 1; } 2>&1 )
time2=$( { time sleep 4; } 2>&1 )
ave=$( bc <<<"scale=3; ($time1 + $time2)/2" )

echo "time1 is $time1 | time2 is $time2 | average is $ave"

Output

time1 is 1.003 | time2 is 4.003 | average is 2.503
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Thanks, it is exactly what I wanted. –  banuj Dec 29 '11 at 0:58
    
Really nice explanation. I wanted to the answer for this question too. +1 :) –  jaypal Dec 29 '11 at 1:35
    
@OctavianRinciog I'm glad this is what you wanted. If this answer is sufficient for you, please click on the checkmark to the left of my answer to accept it. –  SiegeX Dec 29 '11 at 3:29

For the example i'll use a variable preinitialized:

time="54:32.96";

minutes=$(echo "$time" | cut -d":" -f1)
seconds=$(echo "$time" | cut -d":" -f2 | cut -d"." -f1)
millis=$(echo "$time" | cut -d":" -f2 | cut -d"." -f2)

#Total time in millis
totalMillisOne=$(($millis+$seconds*1000+$minutes*60000))

You do this with every command and you save it in diferent vars, and then you do the average:

let avMillis=$totalMillisOne+$totalMillisTwo
let avMillis=$avMillis/2

And you output it in the same input format:

let avSeconds=$avMillis/1000
let avMillis=$avMillis-$avSeconds*1000;

let avMinutes=$avSeconds/60;
let avSeconds=$avSeconds-$avMinutes*60;

echo "${avMinutes}:${avSeconds}.${avMillis}"
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1  
In bash, you could streamline the echo parts with cut -d: -f1 <<< $time, for example. You could also, I think, do the manipulation of the strings in pure Bash, avoiding invoking external commands. I would probably do the whole operation in one Perl (Python, awk, ...) command, but that's in part because I've not internalized all the facilities available in bash. Also note that the time value shown will be converted to 3272.096 instead of 3272.960. –  Jonathan Leffler Dec 29 '11 at 0:05
    
Yeah, i know, i'm only into bash very lightly, learned while doing the degree. i wish i knew more. Also, you're right with the format output. I just do it supposing the specifications given. Thank you so much for your comment :) –  elxordi Dec 29 '11 at 0:24

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