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I use a specific ps command namely

ps -p <pid> -o %cpu, %mem

which gives me a result like

 %CPU %MEM
 15.1 10.0

All i want to do is to just print these numbers like 15.1 and 10.0 without the headers. I tried to use the 'cut' . But it seems to work on every line.

i.e

echo "$(ps -p 747 -o %cpu,%mem)" | cut -c 1-5

gives something like

 %CPU
  8.0

How to get just the numbers without the headers ?

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1  
Use sed 1d instead of cut; it deletes the first line (and passes the rest through unchanged). –  Jonathan Leffler Jul 17 '12 at 23:29
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4 Answers

up vote 2 down vote accepted

Using awk:

ps -p 747 -o %cpu,%mem | awk 'NR>1'

Using sed:

ps -p 747 -o %cpu,%mem | sed 1d
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Great! That worked man. I am new to osx . What exactly does NR>1 mean ? –  Pradep Jul 17 '12 at 23:24
    
@Pradep, NR is short for number of rows. So, NR>1 means: if the number of rows are greater than one` ... print –  Steve Jul 17 '12 at 23:27
    
Got it . Thanks ! –  Pradep Jul 17 '12 at 23:34
    
Why do sed '1d' instead of just tail +2, and why echo "$(…)" instead of just the ? And why ask ps %cpu,%mem and then awk one of the columns away instead of just ps %cpu or ps %mem? But, most of all, why ask ps to print headers just to strip them, when you can just ask it to not print them? –  abarnert Jul 18 '12 at 0:11
    
@abarnert: On Mac OS X, the BSD-based ps (which is different from the GNU ps) does not have a documented mechanism to suppress the header line. The question of columns is valid. What's wrong with sed 1d compared to tail +2; they're approximately equivalent, and sed 1d has a longer pedigree than tail +2 (by many years). –  Jonathan Leffler Jul 18 '12 at 0:13
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Use --no-headers

http://ss64.com/bash/ps.html

 --no-headers   print no header line at all

or use

ps | tail -n +2

hope this helps

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That might work on Linux; it does not work on Mac OS X which uses a BSD implementation of ps, not the GNU version. –  Jonathan Leffler Jul 18 '12 at 0:11
    
Specified for a Mac. Macs don't take the --no-header parameter –  David W. Jul 18 '12 at 0:13
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The BSD equivalent of GNU's ps --no-headers is a bit annoying, but, from the man page:

 -o      Display information associated with the space or comma sepa-
         rated list of keywords specified.  Multiple keywords may also
         be given in the form of more than one -o option.  Keywords may
         be appended with an equals (`=') sign and a string.  This
         causes the printed header to use the specified string instead
         of the standard header.  If all keywords have empty header
         texts, no header line is written.

So:

ps -p 747 -o '%cpu=,%mem='

That's it.

If you ever do need the remove the first line from an arbitrary command, tail makes that easy:

ps -p 747 -o '%cpu,%mem' | tail +2

Or, if you want to be completely portable:

ps -p 747 -o '%cpu,%mem' | tail -n +2

The cut command is sort of the column-based equivalent of the simpler row-based commands head and tail. (If you really do want to cut columns, it works… but in this case, you probably don't; it's much simpler to pass the -o params you want to ps in the first place, than to pass extras and try to snip them out.)

Meanwhile, I'm not sure why you think you need to eval something as the argument to echo, when that has the same effect as running it directly, and just makes things more complicated. For example, the following two lines are equivalent:

echo "$(ps -p 747 -o %cpu,%mem)" | cut -c 1-5
ps -p 747 -o %cpu,%mem | cut -c 1-5
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Already picked the winner. Drats...

If you're already using the -o parameter, you can specify the headings for the particular columns you want to print by putting an equal sign after the name, and the column name. If you put a null string, it'll print no headings:

With standard headings (as you had):

$ ps -p $pid -o%cpu,%mem
 %CPU %MEM
  0.0  0.0

With custom headings (just to show you how it works):

$  ps -p $pid -o%cpu=FOO,%mem=BAR
  FOO  BAR
  0.0  0.0

With null headings (Notice it doesn't even print a blank line):

$ ps -p $pid -o%cpu="",%mem=""
 0.0   0.0
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You don't need the quotes; you can just do -o%cpu=,%mem= (as I showed in my answer). –  abarnert Jul 18 '12 at 0:21
    
@abarnert I saw your answer after I did mine. I never tried it without the quotes before, but it does work. –  David W. Jul 18 '12 at 12:51
    
Yeah, it never hurts to put in the quotes, and if I were improvising at the command line I'd probably add them too… (You'll notice that I have a different set of unnecessary quotes—theoretically, some sh-derived shell might give a special meaning to %cpu, but I don't believe any actual shell treats % specially unless followed by a digit, so I'm just being pointlessly paranoid.) So, that's not a criticism, just a comment that might one day save you a few keystrokes. –  abarnert Jul 18 '12 at 18:40
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