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My command's output is something like:

1540 "A B"
   6 "C"
 119 "D"

The first column is always a number, followed by a space, then a double-quoted string.

My purpose is to get the second column only, like:

"A B"
"C"
"D"

I intended to use <some_command> | awk '{print $2}' to accomplish this. But the question is, some values in the second column contain space(s), which happens to be the default delimiter for awk to separate the fields. Therefore, the output is messed up:

"A
"C"
"D"

How to get the second column's value (with paired quotes) cleanly?

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1  
1  
I tried using awk '{$1=""; print $0}', but it still has a leading white space character. It could be removed by sed '/^ //'. Yet, could this be done with awk? –  Qiang Xu Apr 21 '13 at 23:00

5 Answers 5

up vote 8 down vote accepted

Or use sed & regex.

<some_command> | sed 's/^.* \(".*"$\)/\1/'
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Pretty neat! Thanks! –  Qiang Xu Apr 21 '13 at 23:06

Use -F [field separator] to split the lines on "s:

awk -F '"' '{print $2}' your_input_file

or for input from pipe

<some_command> | awk -F '"' '{print $2}'

output:

A B
C
D
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2  
This is good, but I also want the original surrounding quotes. Could it be done? Thanks. –  Qiang Xu Apr 21 '13 at 22:58
3  
you could cheat, and change awk's print to '{print "\""$2"\""}' –  Alex Apr 21 '13 at 23:01
    
Yup, this works. Thanks a lot, Alex! By the way, so many quotes, :) –  Qiang Xu Apr 21 '13 at 23:06

If you could use something other than 'awk' , then try this instead

echo '1540 "A B"' | cut -d' ' -f2-

-d is a delimiter, -f is the field to cut and with -f2- we intend to cut the 2nd field until end.

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If you have GNU awk this is the solution you want:

$ awk '{print $1}' FPAT='"[^"]+"' file
"A B"
"C"
"D"
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awk -F"|" '{gsub(/\"/,"|");print "\""$2"\""}' your_file
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