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I have a small script, which is called daily by crontab using the following command:

/homedir/MyScript &> some_log.log

The problem with this method is that some_log.log is only created after MyScript finishes. I would like to flush the output of the program into the file while it's running so I could do things like

tail -f some_log.log

and keep track of the progress, etc.

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We'll need to have a description -or if possible code- of what your small script does exactly... –  ChristopheD Sep 15 '09 at 22:37
    
To unbuffer python scripts you could use "python -u". To unbuffer perl scripts, see Greg Hewgill reply below. And so on... –  Eloici May 28 at 10:12
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9 Answers 9

up vote 10 down vote accepted

bash itself will never actually write any output to your log file. Instead, the commands it invokes as part of the script will each individually write output and flush whenever they feel like it. So your question is really how to force the commands within the bash script to flush, and that depends on what they are.

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Thanks, that cleared up the issue a bit. –  olamundo Sep 16 '09 at 9:48
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This isn't a function of bash, as all the shell does is open the file in question and then pass the file descriptor as the standard output of the script. What you need to do is make sure output is flushed from your script more frequently than you currently are.

In Perl for example, this could be accomplished by setting:

$| = 1;

See perlvar for more information on this.

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Would this help?

tail -f access.log | stdbuf -oL cut -d ' ' -f1 | uniq 

This will immedidately display unique entries from access.log
http://www.pixelbeat.org/programming/stdio_buffering/stdbuf-man.html

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The only trouble is that stdbuf seems to be some old utility which is not available on new distros. –  Ondra Žižka Dec 23 '10 at 17:55
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You can use tee to write to the file without the need for flushing.

/homedir/MyScript 2>&1 | tee some_log.log > /dev/null

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well like it or not this is how redirection works.

In your case the output (meaning your script has finished) of your script redirected to that file.

What you want to do is add those redirections in your script.

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script -c <PROGRAM> -f OUTPUT.txt

Key is -f. Quote from man script:

 -f, --flush
         Flush output after each write.  This is nice for telecooperation: one person does `mkfifo foo; script -f foo', and another can supervise real-time what is being done
         using `cat foo'.

Run in background:

nohup script -c <PROGRAM> -f OUTPUT.txt
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How just spotted here the problem is that you have to wait that the programs that you run from your script finish their jobs.
If in your script you run program in background you can try something more.

In general a call to sync before you exit allows to flush file system buffers and can help a little.

If in the script you start some programs in background (&), you can wait that they finish before you exit from the script. To have an idea about how it can function you can see below

#!/bin/bash
#... some stuffs ...
program_1 &          # here you start a program 1 in background
PID_PROGRAM_1=${!}   # here you remember its PID
#... some other stuffs ... 
program_2 &          # here you start a program 2 in background
wait ${!}            # You wait it finish not really useful here
#... some other stuffs ... 
daemon_1 &           # We will not wait it will finish
program_3 &          # here you start a program 1 in background
PID_PROGRAM_3=${!}   # here you remember its PID
#... last other stuffs ... 
sync
wait $PID_PROGRAM_1
wait $PID_PROGRAM_3  # program 2 is just ended
# ...

Since wait works with jobs as well as with PID numbers a lazy solution should be to put at the end of the script

for job in `jobs -p`
do
   wait $job 
done

More difficult is the situation if you run something that run something else in background because you have to search and wait (if it is the case) the end of all the child process: for example if you run a daemon probably it is not the case to wait it finishes :-).

Note:

  • wait ${!} means "wait till the last background process is completed" where $! is the PID of the last background process. So to put wait ${!} just after program_2 & is equivalent to execute directly program_2 without sending it in background with &

  • From the help of wait:

    Syntax    
        wait [n ...]
    Key  
        n A process ID or a job specification
    
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I don't know if it would work, but what about calling sync?

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sync is a low-level filesystem operation and is unrelated to buffered output at the application level. –  Greg Hewgill Sep 15 '09 at 22:48
    
Since you can call sync as a command, what does it do, then? –  forkandwait Sep 15 '09 at 23:02
    
sync writes any dirty filesystem buffers to physical storage, if necessary. This is internal to the OS; applications running on top of the OS always see a coherent view of the filesystem whether or not the disk blocks have been written to physical storage. For the original question, the application (script) is probably buffering the output in a buffer internal to the application, and the OS won't even know (yet) that the output is actually destined to be written to stdout. So a hypothetical "sync"-type operation wouldn't be able to "reach into" the script and pull the data out. –  Greg Hewgill Sep 16 '09 at 1:06
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I had this problem with a background process in Mac OS X using the StartupItems. This is how I solve it:

If I make sudo ps aux I can see that mytool is launched.

I found that (due to buffering) when Mac OS X shuts down mytool never transfers the output to the sed command. However, if I execute sudo killall mytool, then mytool transfers the output to the sed command. Hence, I added a stop case to the StartupItems that is executed when Mac OS X shuts down:

start)
    if [ -x /sw/sbin/mytool ]; then
      # run the daemon
      ConsoleMessage "Starting mytool"
      (mytool | sed .... >> myfile.txt) & 
    fi
    ;;
stop)
    ConsoleMessage "Killing mytool"
    killall mytool
    ;;
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