1

I need to have a single line command that does something in a loop with a timeout.

Something like

export TIMEOUT=60
export BLOCK_SIZE=65536
COMMAND="timeout TIMEOUT while true; do dd if=/tmp/nfsometer_trace/mnt/TESTFILE of=/dev/null bs=BLOCK_SIZE; done"

The command will be executed in 'sh' by doing the following:

echo $COMMAND > COMMAND_FILE
sh COMMAND_FILE

But this gives me a syntax error:

syntax error near unexpected token `do'

Is there any way to have a single line command to timeout an infinite loop?

4
  • your wrapper of COMMAND="timeout .... implies another layer beyond the shell. You'll need to include where your constructing this (PHP?, ruby, a zillion other softwares) OR how you expect to use $COMMAND later on? Consider editing your question (NOT A comment), to include output of echo SHELL=$SHELL, BASH_VERSION=$BASH_VERSION or if you know you're using ksh please add echo KSH_VER=${.sh.version}. Good luck.
    – shellter
    Jan 22 '15 at 0:41
  • you may just be missing that TIMEOUT should be a variable value, ie export TIMEOUT=60; COMMAND="timeout $TIMEOUT .... Good luck.
    – shellter
    Jan 22 '15 at 0:42
  • The TIMEOUT is just a placeholder I used for the example. It can be any number value. Jan 22 '15 at 0:45
  • Will cause less confusion if you show your actual code (as you have now done, (I think) ). You'll still need to use $TIMEOUT in your real code, (or explain your wrapper process that I have hypothesized ; -) ) Same for $BLOCK_SIZE. Good luck.
    – shellter
    Jan 22 '15 at 0:46
3

A command like

 while true ; do echo $(( i++ )) ; sleep 5 ; done

will produce output like

 0
 1
 2
 3

But if I try to use that command directly in timeout, I get similar error messages, i.e.

timeout 20 while true ; do echo $(( i++ )) ; sleep 5 ; done

 bash: syntax error near unexpected token do

Some programs (ssh for example), will process long strings of logic, if quoted so the argument is all one string.

timeout 20 "while true ; do echo $(( i++ )) ; sleep 5 ; done"

timeout: failed to run command 'while true ; do ...' 

same error msg whether I use single of dbl-quotes to pass in string.

Reading info timeout we see that

 COMMAND must not be a special built-in utility (*note Special built in utilities::).

Maybe while loops qualify as special built-in utility?

Finally, note that I have removed worrying about does using the "wrapper" information you have, ie.

export TIMEOUT=60
export BLOCK_SIZE=65536
COMMAND="timeout TIMEOUT while ....

as an cause of your problem.

When you have a problem like this, it is better to prove to yourself that your command is working in a simpler case and then get it work inside a more complex usage.

Given this evidence, I don't think timeout is designed to do what you want.

As a last resort, I recommend that you try converting that while loop into a script and calling just

 timeout 20 myLooperScript

IHTH

5
  • 4
    you do need to quote the complex command, but also passit to another shell as an argument: timeout 20 bash -c "while true ; do echo $(( i++ )) ; sleep 5 ; done"
    – Amnon
    Sep 27 '17 at 7:57
  • @Amnon : Ah. very good, I'm aware of bash -c, but I used it very seldomly in my work. Thanks for the idea. I'll update my answer. . . . .
    – shellter
    Sep 27 '17 at 17:32
  • @Akshya11235 : See Ammon 's idea for fixing your timeout looper problem. Good luck to all.
    – shellter
    Sep 27 '17 at 17:32
  • @Amnon - it seems that your command print ` 0 0 0 0 `
    – soninob
    Aug 2 '20 at 5:35
  • @soninob , yep I confirm 0 0 0 0 0 output, Oops, I didn't test Amnon's idea, and cheerfully recommended it. My Bad!. Also, reviewing the whole thread, I should have commented at the time that bash -c is essentially the same as my advice to "convert(ing) that while loop into a script and calling just timeout 20 myLooperScript". That solution does work, I just tested it ;-) ! Thanks for your comments! Good luck to all!
    – shellter
    Aug 2 '20 at 18:17

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