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I'm trying to implement -s (i.e. silent) option in my script - when given the Errors/Info etc, will be send to the syslog otherwise printing on the screen and also sending to the syslog at the same time. That's what I'm doing:

echo -e "This Is a Test Message\nWell, not really!!"  2>&1 | logger

to send the echo message to the syslog (which doesn't print on-screen) but couldn't just figure out how to do the both at the same time. I see people only talk about either logging with syslog or sending log to a different file whilst printing on the screen but not the situation that I'm trying deal with. Any help or pointer would be greatly appreciated. Cheers!!

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you can pipe to tee : ... | tee -a /var/log/syslog –  hek2mgl Sep 2 '13 at 10:52
2  
Don't use tee -a /var/log/syslog - only root can do that, and syslogd might do all kinds of alternative handling other than just appending to that file. –  David Sainty Sep 2 '13 at 10:57
    
@hek2mgl: True, but that file varies from system to system; e.g. /var/log/messages for Red Hat based system. Using logger is safer IMO. Cheers!! –  MacUsers Sep 2 '13 at 10:58

3 Answers 3

up vote 4 down vote accepted

If you want to send the message to syslog and to stdout (not stderr), you can do this too:

echo -e "This Is a Test Message\nWell, not really!!" | tee >(exec logger)

And the efficient way to do it (if you're creating a function):

exec 40> >(exec logger)

function log {
    echo -e "$1"
    echo -e "$1" >&40
}

log "something..."

exec 40>&-  ## optionally close it at the end of the script.

That would save your script from calling external binary logger everytime you do an echo.

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How do you call the function? –  Juto Sep 2 '13 at 13:54
    
@konsolebox: I think this is the way to go for me. So, just to mack sure, if I use custom file descriptor, there is no way to do it other than using the echo twice? cheers!! –  MacUsers Sep 2 '13 at 14:18
    
@Juto: You call the function just the way konsolebox did: log "Print something...". log is the name of the function. –  MacUsers Sep 2 '13 at 14:34
    
You could also have tee: exec 40> >(exec tee >(exec logger)), though I'd still recommend just having one process for it. It's still the same anyway. Output is duplicated in tee. –  konsolebox Sep 2 '13 at 14:35
    
But of course you're using another function to send output to &40 and you only want to do it once, then the new method could apply. –  konsolebox Sep 2 '13 at 14:39

In that case, just echo the same message twice. You can do:

echo -e "This Is a Test Message\nWell, not really!!" | tee /dev/stderr | logger

But, it's actually simpler and more efficient to do:

error='This Is a Test Message\nWell, not really!!'
echo -e "$error" >&2
echo -e "$error" | logger

The >&2 sends the output to stderr, rather than stdout.

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You can do:

echo -e "This Is a Test Message\nWell, not really!!" | logger -s

The manual page (man logger) states:

-s     Log the message to standard error, as well as the system log.
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Already tried -s but didn't like the fact that it prefixes the message with username: admin: This Is a Test...". It also can't handle \n for the new line, which is not good for me. Cheers!! –  MacUsers Sep 2 '13 at 11:01
    
I removed 2>&1 because it's essentially superfluous - it's not expected to have any effect here regardless of whether the -s option is used or not. –  David Sainty Sep 2 '13 at 11:02

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