I am wondering how you can get the system CPU usage and present it in percent using bash, for example.

Sample output:

57%

In case there is more than one core, it would be nice if an average percentage could be calculated.

closed as off topic by Michael Foukarakis, casperOne Feb 12 '12 at 8:13

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  • 2
    top command is not enough ? – JuSchz Feb 10 '12 at 14:31
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    @julesanchez the value needs to be piped somewhere else, hence it must be an int – user1199739 Feb 10 '12 at 14:34
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    A command that doesn't require sysstat: ps -A -o pcpu | tail -n+2 | paste -sd+ | bc – RFon Mar 3 '15 at 13:30
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    Reopening I don't understand why this was ruled as off-topic, could the ones who closed it please care to elaborate? – Sheljohn Sep 30 '15 at 16:44
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    My understanding of /proc/stat is very limited, but this one-liner works good enough for me: cat <(grep 'cpu ' /proc/stat) <(sleep 1 && grep 'cpu ' /proc/stat) | awk -v RS="" '{printf "%.2f%\n", ($13-$2+$15-$4)*100/($13-$2+$15-$4+$16-$5)}'. With %.2f you can control the number of decimals you want to output, and with sleep 1 you can set the time you want to average over, that is, if it does what I think it does. You can put it in a bash while loop, to test it in realtime. – Yeti Apr 25 '16 at 20:26

Take a look at cat /proc/stat

grep 'cpu ' /proc/stat | awk '{usage=($2+$4)*100/($2+$4+$5)} END {print usage "%"}'

EDIT please read comments before copy-paste this or using this for any serious work. This was not tested nor used, it's an idea for people who do not want to install a utility or for something that works in any distribution. Some people think you can "apt-get install" anything.

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    But you have to install mpstat like you recommend above. Many people don't have that flexibility. cat /proc/stat then pipe is much easier than mpstat you recommend. – vimdude Mar 22 '13 at 13:13
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    +1 Don't understand why parsing another utility is better than parsing /proc/stat – BroSlow Feb 26 '14 at 18:31
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    system + user + idle = 100%. So maybe something like: grep 'cpu ' /proc/stat | awk '{cpu_usage=($2+$4)*100/($2+$4+$5)} END {print cpu_usage "%"}' – vimdude Jun 2 '14 at 18:51
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    I think that this solution doesn't show the current CPU load but the average cpu load since the CPU started. – Etienne Sep 11 '14 at 15:54
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    @jlliagre, yes that's right. To calculate the CURRENT cpu usage not average, you will need to take $1 value then delay then take $1 value and see the difference. That's the current cpu usage. – vimdude Aug 19 '15 at 15:11

You can try:

top -bn1 | grep "Cpu(s)" | \
           sed "s/.*, *\([0-9.]*\)%* id.*/\1/" | \
           awk '{print 100 - $1"%"}'
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    Every time I run this command, I get the exact same output (32.7%). – alanaktion Jul 18 '13 at 1:58
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    A more accurate result is given when I use top -bn2, but it takes a long time. From what I've read, this seems to be the only way to get an accurate result. – alanaktion Jul 18 '13 at 2:10
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    top -bn1 seems wildly inaccurate on my FC20 system. top -bn2 seems to work well. – Martin Tournoij Feb 19 '14 at 0:58
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    The command in this answer appears to be written for systems where top -v returns procps-ng (e.g., Fedora). There's also procps, found on, e.g., Ubuntu and CentOS, where the command doesn't work (always indicates 100%, because parsing fails due to the line with the CPU figures being formatted differently). Here's a version that works with both implementations: top -b -n2 -p 1 | fgrep "Cpu(s)" | tail -1 | awk -F'id,' -v prefix="$prefix" '{ split($1, vs, ","); v=vs[length(vs)]; sub("%", "", v); printf "%s%.1f%%\n", prefix, 100 - v }' – mklement0 Feb 21 '14 at 4:15
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    Side note: on OSX, use the following: top -l 2 -n 0 -F | egrep -o ' \d*\.\d+% idle' | tail -1 | awk -F% -v prefix="$prefix" '{ printf "%s%.1f%%\n", prefix, 100 - $1 }'. – mklement0 Feb 21 '14 at 4:15

Try mpstat from the sysstat package

> sudo apt-get install sysstat
Linux 3.0.0-13-generic (ws025)  02/10/2012  _x86_64_    (2 CPU)  

03:33:26 PM  CPU    %usr   %nice    %sys %iowait    %irq   %soft  %steal  %guest   %idle
03:33:26 PM  all    2.39    0.04    0.19    0.34    0.00    0.01    0.00    0.00   97.03

Then some cutor grepto parse the info you need:

mpstat | grep -A 5 "%idle" | tail -n 1 | awk -F " " '{print 100 -  $ 12}'a
  • I don't beleive this shows the total CPU – user1199739 Feb 10 '12 at 14:36
  • I'd say it 100-%idle that's the total CPU usage (in %) – Peter Liljenberg Feb 10 '12 at 14:38
  • That's the percentage "not" used. This answer was good, up until the grep | tail | awk part... – jordanm Feb 10 '12 at 14:47
  • I'd change the awk part to: awk -F " " '{print (100 - $12)"%"}', which gives the output formatted like he wanted, but otherwise this looks good to me. – Dan Fego Feb 10 '12 at 14:52
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    @jordanm All truths; I was more voting it up because it works. I'd do this, personally: mpstat | awk '$12 ~ /[0-9.]+/ { print 100 - $12 }' – Dan Fego Feb 10 '12 at 15:06

Might as well throw up an actual response with my solution, which was inspired by Peter Liljenberg's:

$ mpstat | awk '$12 ~ /[0-9.]+/ { print 100 - $12"%" }'
0.75%

This will use awk to print out 100 minus the 12th field (idle), with a percentage sign after it. awk will only do this for a line where the 12th field has numbers and dots only ($12 ~ /[0-9]+/).

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    Its better to run "mpstat 2 1 |..." so that it shows stats for the last 1 second. Otherwise, by default, mpstat shows stats since beginning and that does not change much as time progresses – Sarang Jul 19 '13 at 19:56
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    "mpstat | awk '$12 ~ /[0-9.]+/ { print 100 - $11"%" }'" this work for me. – AloneInTheDark Feb 26 '14 at 9:05
  • @Sarang Thank you so much!! Finally I can get the results that conky is displaying as well. Unfortunately, this line is VERY slow, almost taking up to one whole second to execute. – syntaxerror Sep 15 '14 at 1:35
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    @syntaxerror It takes exactly 2 seconds because if you look at the command help you see that the first argument is that it's the interval but it only executes once because of the second argument so it waits 2 full seconds until it returns the result. – Johan Bjäreholt Jan 30 '15 at 11:16

EDITED: I noticed that in another user's reply %idle was field 12 instead of field 11. The awk has been updated to account for the %idle field being variable.

This should get you the desired output:

mpstat | awk '$3 ~ /CPU/ { for(i=1;i<=NF;i++) { if ($i ~ /%idle/) field=i } } $3 ~ /all/ { print 100 - $field }'

If you want a simple integer rounding, you can use printf:

mpstat | awk '$3 ~ /CPU/ { for(i=1;i<=NF;i++) { if ($i ~ /%idle/) field=i } } $3 ~ /all/ { printf("%d%%",100 - $field) }'
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    mpstat 1 1 | awk '$3 ~ /CPU/ { for(i=1;i<=NF;i++) { if ($i ~ /%idle/) field=i } } $3 ~ /all/ { printf("%d",100 - $field) }' works great for me, thanks. note the mpstat 1 1 to ensure that the cpu usage is sampled over a second – chrishiestand Jun 7 '15 at 6:28

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