106

On Linux, I use stat --format="%s" FILE, but Solaris I have access to doesn't have stat command. What should I use then?

I'm writing Bash scripts, and can't really install any new software on the system.

I've considered already using:

perl -e '@x=stat(shift);print $x[7]' FILE

or even:

ls -nl FILE | awk '{print $5}'

But neither of these looks sensible - running Perl just to get file size? Or running 2 commands to do the same?

  • 1
    well a bash script is software, and if you can put that on the system, you can install software. – just somebody Nov 29 '09 at 11:58
  • 4
    Technically - true. I meant that I don't have root privileges, and can't install new packages. Sure installing in home dir is possible. But not really when I have to make the script that is portable, and installation on "X" machines, new additional packages becomes tricky. – user80168 Nov 29 '09 at 12:11

14 Answers 14

195

wc -c < filename (short for word count, -c prints the byte count) is a portable, POSIX solution. Only the output format might not be uniform across platforms as some spaces may be prepended (which is the case for Solaris).

Do not omit the input redirection. When the file is passed as an argument, the file name is printed after the byte count.

I was worried it wouldn't work for binary files, but it works OK on both Linux and Solaris. You can try it with wc -c < /usr/bin/wc. Moreover, POSIX utilities are guaranteed to handle binary files, unless specified otherwise explicitly.

  • 67
    Or just wc -c < file if you don't want the filename appearing. – caf Nov 29 '09 at 23:06
  • 32
    If I'm not mistaken, though, wc in a pipeline must read() the entire stream to count the bytes. The ls/awk solutions (and similar) use a system call to get the size, which should be linear time (versus O(size)) – jmtd May 7 '11 at 16:40
  • 1
    I recall wc being very slow the last time I did that on a full hard disk. It was slow enough that I could re-write the script before the first one finished, came here to remember how I did it lol. – Camilo Martin Jul 27 '12 at 13:43
  • 6
    I wouldn't use wc -c; it looks much neater but ls + awk is better for speed/resource use. Also, I just wanted to point out that you actually need to post-process the results of wc as well because on some systems it will have whitespace before the result, which you may need to strip before you can do comparisons. – Haravikk Jul 28 '13 at 10:21
  • 3
    wc -c is great, but it will not work if you don't have read access to the file. – Silas Jan 13 '16 at 16:47
35

I ended up writing my own program (really small) to display just the size. More information here: http://fwhacking.blogspot.com/2011/03/bfsize-print-file-size-in-bytes-and.html

The two most clean ways in my opinion with common Linux tools are:

$ stat -c %s /usr/bin/stat
50000

$ wc -c < /usr/bin/wc
36912

But I just don't want to be typing parameters or pipe the output just to get a file size, so I'm using my own bfsize.

  • 2
    First line of problem description states that stat is not an option, and the wc -c is the top answer for over a year now, so I'm not sure what is the point of this answer. – user80168 Mar 11 '11 at 15:09
  • 22
    The point is in people like me who find this SO question in Google and stat is an option for them. – yo' Nov 22 '12 at 21:05
  • 3
    I'm working on an embedded system where wc -c takes 4090 msec on a 10 MB file vs "0" msec for stat -c %s, so I agree it's helpful to have alternative solutions even when they don't answer the exact question posed. – Robert Calhoun Mar 9 '13 at 1:37
  • 3
    "stat -c" is not portable / does not accept the same arguments on MacOS as it does on Linux. "wc -c" will be very slow for large files. – Orwellophile Mar 20 '13 at 11:58
  • 2
    stat is not portable either. stat -c %s /usr/bin/stat stat: illegal option -- c usage: stat [-FlLnqrsx] [-f format] [-t timefmt] [file ...] – user1985657 May 26 '15 at 14:48
24

Even though du usually prints disk usage and not actual data size, GNU coreutils du can print file's "apparent size" in bytes:

du -b FILE

But it won't work under BSD, Solaris, macOS, ...

  • 3
    On MacOS X, brew install coreutils and gdu -b will achieve the same effect – Jose Alban Apr 19 '16 at 9:13
  • 1
    I prefer this method because wc needs to read the whole file befor giving a result, du is immediate. – CousinCocaine Jan 2 '17 at 11:36
  • 1
    POSIX mentions du -b in a completely different context in du rationale. – Palec Jul 4 '17 at 11:39
  • This uses just the lstat call, so its performance does not depend on file size. Shorter than stat -c '%s', but less intuitive and works differently for folders (prints size of each file inside). – Palec Jul 4 '17 at 12:00
  • FreeBSD du can get close using du -A -B1, but it still prints the result in multiples of 1024B blocks. Did not manage to get it to print bytes count. Even setting BLOCKSIZE=1 in the environemnt does not help, because 512B block are used then. – Palec Jul 4 '17 at 12:31
13

Finally I decided to use ls, and bash array expansion:

TEMP=( $( ls -ln FILE ) )
SIZE=${TEMP[4]}

it's not really nice, but at least it does only 1 fork+execve, and it doesn't rely on secondary programming language (perl/ruby/python/whatever)

  • Just an aside - the 'l' in '-ln' is not required; '-n' is exactly the same as '-ln' – barryred May 14 '13 at 13:07
  • No, it's not. Just compare outputs. – user80168 May 14 '13 at 16:33
  • One would guess the portable ls -ln FILE | { read _ _ _ _ size _ && echo "$size"; } needs not fork for the second step of the pipeline, as it uses just built-ins, but Bash 4.2.37 on Linux forks twice (still only one execve, though). – Palec Jul 4 '17 at 13:07
  • read _ _ _ _ size _ <<<"$(exec ls -ln /usr/bin/wc)" && echo "$size" works with single fork and single exec, but it uses a temporary file for the here-string. It can be made portable by replacing the here-string with POSX-compliant here-document. BTW note the exec in the subshell. Without that, Bash performs one fork for the subshell and another one for the command running inside. This is the case in the code you provide in this answer. too. – Palec Jul 4 '17 at 13:29
  • 1
    The -l is superfluous in presence of -n. Quoting POSIX ls manpage: -n: Turn on the -l (ell) option, but when writing the file's owner or group, write the file's numeric UID or GID rather than the user or group name, respectively. Disable the -C, -m, and -x options. – Palec Jul 4 '17 at 15:03
8

Cross platform fastest solution (only uses single fork() for ls, doesn't attempt to count actual characters, doesn't spawn unneeded awk, perl, etc).

Tested on MacOS, Linux - may require minor modification for Solaris:

__ln=( $( ls -Lon "$1" ) )
__size=${__ln[3]}
echo "Size is: $__size bytes"

If required, simplify ls arguments, and adjust offset in ${__ln[3]}.

Note: will follow symlinks.

  • 1
    Or put it in a shell script: ls -Lon "$1" | awk '{ print $4 }' – Luciano Apr 21 '16 at 13:10
  • 1
    @Luciano I think you have totally missed the point of not forking and doing a task in bash rather than using bash to string a lot of unix commands together in an inefficient fashion. – Orwellophile Jun 8 '16 at 9:05
8

BSDs have stat with different options from the GNU coreutils one, but similar capabilities.

stat -f %z <file name> 

This works on macOS (tested on 10.12), FreeBSD, NetBSD and OpenBSD.

  • Solaris does not have stat utility at all, though. – Palec Jul 4 '17 at 15:42
4

If you use find from GNU fileutils:

size=$( find . -maxdepth 1 -type f -name filename -printf '%s' )

Unfortunately, other implementations of find usually don't support -maxdepth, nor -printf. This is the case for e.g. Solaris and macOS find.

  • FYI maxdepth is not needed. It could be rewritten as size=$(test -f filename && find filename -printf '%s'). – Palec Feb 26 '14 at 0:49
  • @Palec: The -maxdepth is intended to prevent find from being recursive (since the stat which the OP needs to replace is not). Your find command is missing a -name and the test command isn't necessary. – Dennis Williamson Feb 26 '14 at 1:39
  • @DennisWilliamson find searches its parameters recursively for files matching given criteria. If the parameters are not directories, the recursion is… quite simple. Therefore I first test that filename is really an existing ordinary file, and then I print its size using find that has nowhere to recurse. – Palec Feb 26 '14 at 4:38
  • 1
    find . -maxdepth 1 -type f -name filename -printf '%s' works only if the file is in the current directory, and it may still examine each file in the directory, which might be slow. Better use (even shorter!) find filename -maxdepth 1 -type f -printf '%s'. – Palec Jul 4 '17 at 11:13
4

When processing ls -n output, as an alternative to ill-portable shell arrays, you can use the positional arguments, which form the only array and are the only local variables in standard shell. Wrap the overwrite of positional arguments in a function to preserve the original arguments to your script or function.

getsize() { set -- $(ls -dn "$1") && echo $5; }
getsize FILE

This splits the output of ln -dn according to current IFS environment variable settings, assigns it to positional arguments and echoes the fifth one. The -d ensures directories are handled properly and the -n assures that user and group names do not need to be resolved, unlike with -l. Also, user and group names containing whitespace could theoretically break the expected line structure; they are usually disallowed, but this possibility still makes the programmer stop and think.

3

You can use find command to get some set of files (here temp files are extracted). Then you can use du command to get the file size of each file in human readable form using -h switch.

find $HOME -type f -name "*~" -exec du -h {} \;

OUTPUT:

4.0K    /home/turing/Desktop/JavaExmp/TwoButtons.java~
4.0K    /home/turing/Desktop/JavaExmp/MyDrawPanel.java~
4.0K    /home/turing/Desktop/JavaExmp/Instream.java~
4.0K    /home/turing/Desktop/JavaExmp/RandomDemo.java~
4.0K    /home/turing/Desktop/JavaExmp/Buff.java~
4.0K    /home/turing/Desktop/JavaExmp/SimpleGui2.java~
2

You first Perl example doesn't look unreasonable to me.

It's for reasons like this that I migrated from writing shell scripts (in bash/sh etc.) to writing all but the most trivial scripts in Perl. I found that I was having to launch Perl for particular requirements, and as I did that more and more, I realised that writing the scripts in Perl was probably a more powerful (in terms of the language and the wide array of libraries available via CPAN) and more efficient way to achieve what I wanted.

Note that other shell-scripting languages (e.g. python/ruby) will no doubt have similar facilities, and you may want to evaluate these for your purposes. I only discuss Perl since that's the language I use and am familiar with.

  • Well, I do a lot of Perl writing myself, but sometimes the tool is chosen for me, not by me :) – user80168 Nov 29 '09 at 12:08
-3

if you have Perl on your Solaris, then use it. Otherwise, ls with awk is your next best bet, since you don't have stat or your find is not GNU find.

-3

There is a trick in Solaris I have used, if you ask for the size of more than one file it returns just the total size with no names - so include an empty file like /dev/null as the second file:

eg command fileyouwant /dev/null

I can't rememebr which size command this works for ls/wc/etc - unfortunately I don't have a solaris box to test it.

-4

on linux you can use du -h $FILE, does that work on solaris too?

  • It doesn't show size in bytes. – user80168 Nov 29 '09 at 12:21
  • 1
    Actually, units could be converted, but this shows disk usage instead of file data size ("apparent size"). – Palec Jul 4 '17 at 11:55
-6

Did you try du -ks | awk '{print $1*1024}'. That might just work.

  • no, it doesn't. for file of 60 bytes it reports 4096. – user80168 Nov 29 '09 at 19:05
  • 1
    This shows disk usage instead of file data size ("apparent size"). – Palec Jul 4 '17 at 11:57

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy