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I am wondering how you can get a system cpu usage and present it in % (in bash) e.g.

Sample output:

57%

If in the case there were more than 1 core, it would be nice if an average percentage could be worked out

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

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1  
top command is not enough ? –  JuSchz Feb 10 '12 at 14:31
    
@julesanchez the value needs to be piped somewhere else, hence it must be an int –  user1199739 Feb 10 '12 at 14:34
    
doing top > myfile.txt And applying your filter in post-treatment, is not ok ? –  JuSchz Feb 10 '12 at 14:35
    
If it needs to be an int, does that mean you actually don't want the % as stated in the question? –  jordanm Feb 10 '12 at 15:17

5 Answers 5

You can try:

top -bn1 | grep "Cpu(s)" | \
           sed "s/.*, *\([0-9.]*\)%* id.*/\1/" | \
           awk '{print 100 - $1"%"}'
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2  
Every time I run this command, I get the exact same output (32.7%). –  alanaktion Jul 18 '13 at 1:58
5  
A more accurate result is given when I use top -bn2, but it takes a long time. From what I've read, this seems to be the only way to get an accurate result. –  alanaktion Jul 18 '13 at 2:10
2  
top -bn1 seems wildly inaccurate on my FC20 system. top -bn2 seems to work well. –  Carpetsmoker Feb 19 at 0:58
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In my server, i need change regex: "s/.*, ([0-9.]*)% -------> sed "s/.*: ([0-9.]*)%.*/\1/" –  Edgard Leal Feb 21 at 2:12
2  
The command in this answer appears to be written for systems where top -v returns procps-ng (e.g., Fedora). There's also procps, found on, e.g., Ubuntu and CentOS, where the command doesn't work (always indicates 100%, because parsing fails due to the line with the CPU figures being formatted differently). Here's a version that works with both implementations: top -b -n2 -p 1 | fgrep "Cpu(s)" | tail -1 | awk -F'id,' -v prefix="$prefix" '{ split($1, vs, ","); v=vs[length(vs)]; sub("%", "", v); printf "%s%.1f%%\n", prefix, 100 - v }' –  mklement0 Feb 21 at 4:15

Take a look at cat /proc/stat

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

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I wouldn't recommend parsing that in bash when there are a number of utilities which already do this. –  jordanm Feb 10 '12 at 14:53
4  
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 at 18:31
    
How do you parse it? –  CMCDragonkai Jun 2 at 8:30
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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 at 18:51

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
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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
    
@DanFego The grep and tail is not needed. Also, -F " " is not needed, as whitespace is used for FS by default. –  jordanm Feb 10 '12 at 14:59

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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2  
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 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 at 1:35

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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