0

This question already has an answer here:

I have a variable named $lsoutput in which I store the result of the ls -l command
It's content is

  • -rw-r--r-- 1 root ftp 44 Apr 29 2003 first_file.txt
  • I would like to get the size of that file.
  • I useed the following regular expression

if [[ "$lsoutput" =~ ^[-rwx]{10}[[:space:]][[:digit:]]+[[:space:]][[:alnum:]]+[[:space:]][[:alnum:]]+[[:space]]([[:digit:]]+) ]]
    echo ${BASH_REMATCH[1]}
fi

Unfortuantely this regexp does not work. What is wrong with it? Can you provide a correct one? Thanks for your help

marked as duplicate by Charles Duffy bash May 31 '17 at 15:35

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1

There's much easier way.

stat --format=%s <FILE>

The above command prints the size of the file in bytes.

Parsing ls output is not recommended.

  • One can also use GNU find: find "$file" -maxdepth 0 -printf '%s\n', for instance. – Charles Duffy May 31 '17 at 15:31
0

Isn't it easier to use:

ls -l | awk '{print $5}'

Which just prints the file size?

  • Missing closing apostrophe, also the -rt options are not necessary for this to work. Anyway much cleaner than using that long regexp here, specially if it is wrong. – Ho Zong May 31 '17 at 15:20
  • SO does not let me edit the answer as it needs at least 6 chars to edit, and did not want to just make some rewording, this is your answer... so please edit it. – Ho Zong May 31 '17 at 15:21
  • Fixed with your comment, thanks! – Bas van Dijk May 31 '17 at 15:24
0

with cut:

ls -l|tr -s ' ' |cut -d' ' -f5

Not the answer you're looking for? Browse other questions tagged or ask your own question.