37

How to cut first column (variable length) of a string in shell ?

ex of string :

23006 help.txt

I need 23006 as output

0

3 Answers 3

61

Many ways:

cut -d' ' -f1 <filename # If field separator is space
cut -f1 <filename  # If field separator is tab
cut -d' ' -f1 <filename | cut -f1  # If field separator is space OR tab
awk '{print $1}' filename
while read x _ ; do echo $x ; done < filename
2
  • Somehow, with the cut option, when I piped in ps output, the only entries in the displayed results were the ones with the first column (as meant by the OP) being of length 5 and the ones with length 3 or 4 were not. There was a blank area before the displayed output, I guess this space is equal in line numbers (term height) as the above mentioned lines, with hidden 3 / 4 char wide first column entry. The awk way worked fine.
    – 0xc0de
    Commented Dec 19, 2019 at 8:07
  • ps gives a formatted output. (like printf %5d would give.) So, when cut is using space as the delimiter, it sees the leading space (for smaller PID numbers) as delimiters. Hence it prints everything before the first space (which is nothing in that case.)
    – anishsane
    Commented Dec 19, 2019 at 9:31
12
cut -d " " -f1 test.txt

where test.txt contains your input line

6

This one works for me

cut -d' ' -f2-

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