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Want to get disk space and separate this with most used space but put in one list

Example how get the used space:

df -P | grep -vE 'Filesystem' | awk '{ print $5 " " $6 }'

Output:

89% /
1% /oralog
24% /oradata
0% /dev/shm

Expected view:

[bad] 89% /
[ok] 1% /oralog
[ok]24% /oradata
[ok]0% /dev/shm
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Is that part of your input, or do you want to calculate it? –  TLP May 23 '13 at 10:59
    
Note: the -E with grep is for extended regular expressions. You aren't using any features from ERE, in fact you are searching for a fixed string so you would want -F. However you don't need grep here as shown in my answer. –  sudo_O May 23 '13 at 11:21
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3 Answers

up vote 5 down vote accepted

You can drop the grep by skipping over the first line in awk with NR>1 as the condition for the block. Just set the value of x to be the limit for good/bad, in the example I set the limit as 80:

$ df -P | awk 'NR>1{print ($5>x)?"[bad]":"[okay]",$5,$6}' OFS='\t' x=80
[bad]   89%    /
[ok]    1%     /oralog
[ok]    24%    /oradata
[ok]    0%     /dev/shm
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1  
perfect example –  Kalin Borisov May 23 '13 at 13:49
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What about this?

awk '{if($5>20) a="[bad]"; else a="[good]";} {print a, $5 " " $6}'

All together:

$ df -P | grep -vE 'Filesystem' | awk '{if($5>20) a="[bad]"; else a="[good]";} {print a, $5 " " $6}'

Test (whith threshold of 20%):

$ df -P | grep -vE 'Filesystem' | awk '{if($5>20) a="[bad]"; else a="[good]";} {print a, $5 " " $6}'
[bad] 25% /
[good] 1% /dev
[good] 1% /run
[good] 0% /run/lock
[good] 1% /run/shm
[good] 1% /run/user
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Only disk with highest usage has [bad]

df -P | perl -anE '$F[4]=~s/%//||next;push@r,[@F];$m<$F[4] and $m=$F[4];END{say $m==$$_[4]?"[bad]":"[ok]"," $$_[4]% $$_[5]"for@r}'

output

[ok] 44% /
[ok] 0% /lib/init/rw
[ok] 1% /dev
[ok] 0% /dev/shm
[bad] 61% /ftp
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Great example thank you –  Kalin Borisov May 23 '13 at 12:59
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