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I want to search for the / under Mounted on in the following df output:

Filesystem     1K-blocks     Used Available Use% Mounted on
/dev/sda1      471081708 82857660 364294432  19% /
udev             2046164        4   2046160   1% /dev
tmpfs             822540     1376    821164   1% /run
none                5120        0      5120   0% /run/lock
none             2056344      388   2055956   1% /run/shm
/dev/sdb1      228917696 21117560 195590336  10% /media/xtra

However, this command

df | awk -F" " /\// '{print $6 "\t" $4}'

results in this error

awk: cmd. line:1: ///
awk: cmd. line:1:    ^ unexpected newline or end of string

How can I search for the / under Mounted on?

share|improve this question
    
Since every line except te first contains a "/", what exactly is it you're trying to accomplish by searching for "/"? If it's just to skip the first line there's a much more obvious solution of NR>1 –  Ed Morton Jan 7 '13 at 17:33
    
I'm trying to get the last "/", and you bring up a good point. I'll probably wind up getting line 2. –  octopusgrabbus Jan 7 '13 at 17:35
    
You'll get all lines with the posted solutions. What do you mean the last "/"? The last line or the last occurrence of "/" on each line? Please post the expected output from your sample input so we aren't guessing. –  Ed Morton Jan 7 '13 at 17:36

2 Answers 2

up vote 2 down vote accepted

Your pattern was outside the quotes:

$ df | awk '/\//{print $6 "\t" $4}'

You can also specify the output field separator at the beginning of the script:

$ df | awk 'BEGIN{OFS="\t"}/\//{print $6, $4}'

$ df | awk -v OFS="\t" '/\//{print $6, $4}'

But as EdMorton points out everyline has at least one / beside the heading so you could drop the match and just skip the first line like:

$ df | awk 'NR>1{print $6 "\t" $4}'
share|improve this answer
    
Or, IOW, the pattern needs to be part of the same argument as the match. –  Jonathan Leffler Jan 7 '13 at 17:23
    
Ugh to the change using BEGIN...it was better with the literal tab in the print string. –  Jonathan Leffler Jan 7 '13 at 17:24
    
@JonathanLeffler any reason beside style, It's what the OFS is for after all. –  iiSeymour Jan 7 '13 at 17:25
    
perhaps -v OFS='\t' is more palatable? Either way.... Since there's a "/" on every line but the header I really don't get what the OP is trying to do by searching for "/" anyway. –  Ed Morton Jan 7 '13 at 17:32
    
I'd argue clarity (and secondarily brevity) makes the first better. –  Jonathan Leffler Jan 7 '13 at 17:35

your pattern doesn't really make sense, because each line of your df output always contains a /. (except for the title)

if you want to reformat the output to $6\t$4:

df|awk '{print $6"\t"$4}'

if your pattern is just for skipping the title,you could:

 df|awk 'NR>1{print $6"\t"$4}'

if you just want to search exactly / (root partition):

df|awk '$6~/^\/$/{print $6"\t"$4}'
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