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Want to get the decimal part of the first field from the du -h command. So the field delimiter should be the character K or character M. I tried multiple options with -F and it was not working.

du -h AWSD.????.20121123.????.LBB4.????.*.gz  |
    tr -s ' ' | 
    awk -F'K|M' 'BEGIN{x=0;} {print $1;} END{print x;}  
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1  
What are you actually trying to accomplish here? What is your expected output? –  Steve Jan 7 '13 at 1:43
    
I just want the unit part of the first field of the du -h. I want to do the sum of total usage using awk. –  Arav Jan 7 '13 at 2:21
1  
Post the output of your du command and the desired output of your awk command so everyone can stop guessing. –  Ed Morton Jan 7 '13 at 4:38
    
The output is only blank lines. –  Arav Jan 8 '13 at 22:52

3 Answers 3

up vote 1 down vote accepted

You appear to be looking for an awk solution that will use either K or M as the field delimiter. Your solution was almost correct and will work if you enclose KM as a character class:

du -h | awk -F '[KM]' '{ print $1 }'

Now, in the original question, you also wanted to total usage. In that case, it's not correct to drop the K or M character - it's better in this case to use df -k and just sum column 1:

$ du -k | awk '{ sum+=$1 } END { print sum, "k" }'
52939620 k
$ du -k | awk '{ sum+=$1*1024 } END { print sum/1e6, "x 1e6 bytes" }' 
54210.2 x 1e6 bytes
$ du -k | awk '{ sum+=$1*1024 } END { print sum/1e9, "x 1e9 bytes" }'
54.2102 x 1e9 bytes

Note how this code avoids the discussion about MebiBytes vs MegaBytes.

Note2: This code, however, counts child directories once again for each parent directory. On a Solaris system, add -o to du -k to prevent this.

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I tried the below one. It's not working. Running in solaris 10. I tried with a space and without a space after the F delimiter both are not working. du -h AWSD.????.20121123.????.LBB4.????.*.gz | tr -s ' ' | awk -F'[KM]' '{ print $1; }' –  Arav Jan 7 '13 at 3:38
    
On Solaris, use nawk instead of awk. Also see see the note about du -ko. –  Henk Langeveld Jan 7 '13 at 6:48

I think what you want is either the first field:

du -h AWSD.????.20121123.????.LBB4.????.*.gz | cut -f1

Or first field without the unit:

du -h AWSD.????.20121123.????.LBB4.????.*.gz | cut -f1 | sed 's/[GMK]$//'

Or to get the integer part of the first field:

du -h AWSD.????.20121123.????.LBB4.????.*.gz | sed 's/\([0-9]*\).*/\1/'
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Thanks a lot. How do i use pattern matching to skip K or M in the field delimiter of awk. –  Arav Jan 7 '13 at 2:20
    
The below one produces empty output.du -h AWSD.????.20121123.????.LBB4.????.*.gz | sed 's/([0-9]*).*/\1/' –  Arav Jan 7 '13 at 3:58
    
are you including the escapes (backslashes) in: sed 's/\([0-9]*\).*/\1/'? –  perreal Jan 7 '13 at 4:02
    
Tried with the escapes (backslashes) blank line gets printed continously, I just copied the command that you posted and ran it. –  Arav Jan 7 '13 at 5:16

A simple answer is to use built-in type conversion (nawk/gawk):

du -h | nawk '{print $1+0}'

The field is converted to a numeric type by adding zero, trailing characters which are not part of a number are simply ignored. (Though you should understand what is accepted as numeric, e.g. input like "123e10" will be treated as 123x10^10 .)

A disadvantage of using FS for this is that the only way to recover which separator was present is to inspect $0. Something like:

if ( match($1,/([0-9.]+)([KMGT])/,bb) ) {
  ...
}

would be my suggestion (gawk >=3.1.0).

If you are dealing with large numbers, you may need to use printf(), or modify the default numeric output format (OFMT variable), rather than just "print". I have long since given up parsing platform-dependent output of ls/df/du etc, using GNU stat (coreutils) is more robust in my experience.

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