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I occasionally run a bash command line like this:

n=0; while [[ $n -lt 10 ]]; do some_command; n=$((n+1)); done

To run some_command a number of times in a row -- 10 times in this case.

Often some_command is really a chain of commands or a pipeline.

Is there a more concise way to do this?

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Besides the other nice answers, you can use let ++n instead of n=$((n+1)) (3 less characters). –  musiphil Jan 21 at 17:48

9 Answers 9

up vote 59 down vote accepted
for run in {1..10}
do
  command
done
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4  
If you have LOTS of iterations, the form with for (n=0;n<k;n++)) may be better; I suspect {1..k} will materialize a string with all those integers separated by spaces. –  Joe Koberg Sep 17 '10 at 18:07
    
@Joe Koberg, thanks for the tip. I'm typically use N<100 so this seems good. –  bstpierre Sep 17 '10 at 18:11
    
Accepting this as the answer since it is slightly more concise (by a whisker) than for(()). –  bstpierre Sep 17 '10 at 18:35
1  
@bstpierre: The brace expansion form can't use variables (easily) to specify the range in Bash. –  Dennis Williamson Sep 17 '10 at 19:02
1  
That is true. Brace expansion is performed before variable expansion according to gnu.org/software/bash/manual/bashref.html#Brace-Expansion , thus it will never see the values of any variables. –  Joe Koberg Sep 17 '10 at 19:10
for ((n=0;n<10;n++)); do some_command; done
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Another form of your example:

n=0; while (( n++ < 10 )); do some_command; done
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Another simple way to hack it:

seq 1 20 | xargs -Iz echo "Hi there" # z

run echo 20 times.

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1  
you don't even need the 1 (can just run seq 20) –  Oleg Vaskevich Jul 17 at 15:23

xargs and seq will help

function __run_times { seq 1 $1| { shift; xargs -i -- "$@"; } }

the view :

abon@abon:~$ __run_times 3  echo hello world
hello world
hello world
hello world
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what does the shift and the double-dash in the command do? Is the 'shift' really necessary? –  sebs Apr 23 '13 at 0:07
    
This will not work if the command is more complex than a simple command with no redirections. –  chepner Sep 12 '13 at 14:58

For one, you can wrap it up in a function:

function manytimes {
    n=0
    times=$1
    shift
    while [[ $n -lt $times ]]; do
        $@
        n=$((n+1))
    done
}

Call it like:

$ manytimes 3 echo "test" | tr 'e' 'E'
tEst
tEst
tEst
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1  
This will not work if the command to run is more complex than a simple command with no redirections. –  chepner Sep 12 '13 at 14:57
    
You can make it work for more complex cases, but you may have to wrap the command in a function or script. –  bta Oct 2 '13 at 21:57

How about the alternate form of for mentioned in (bashref)Looping Constructs?

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1  
throw him a bone and give an example of the alternate form? –  Joe Koberg Sep 17 '10 at 18:05
    
It's in BatchyX's answer already –  bstpierre Sep 17 '10 at 18:06

Using GNU Parallel you can do:

parallel some_command ::: {1..1000}

If you do not want the number as argument and only run a single job at a time:

parallel -j1 -N0 some_command ::: {1..1000}

Watch the intro video for a quick introduction: https://www.youtube.com/playlist?list=PL284C9FF2488BC6D1

Walk through the tutorial (http://www.gnu.org/software/parallel/parallel_tutorial.html). You command line with love you for it.

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For loops are probably the right way to do it, but here is a fun alternative:

echo -e {1..10}"\n" |xargs -n1 some_command

If you need the iteration number as a parameter for your invocation, use:

echo -e {1..10}"\n" |xargs -I@ echo now I am running iteration @

Edit: It was rightly commented that the solution given above would work smoothly only with simple command runs (no pipes, etc.). you can always use a sh -c to do more complicated stuff, but not worth it.

Another method I use typically is the following function:

rep() { s=$1;shift;e=$1;shift; for x in `seq $s $e`; do c=${@//@/$x};sh -c "$c"; done;}

now you can call it as:

rep 3 10 echo iteration @

The first two numbers give the range. The @ will get translated to the iteration number. Now you can use this with pipes too:

rep 1 10 "ls R@/|wc -l"

with give you the number of files in directories R1 .. R10.

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1  
This will not work if the command is more complex than a simple command with no redirections. –  chepner Sep 12 '13 at 14:59
    
fair enough, but see my edit above. The edited method uses a sh -c, so should work with redirection too. –  stacksia Sep 16 '13 at 13:52
    
rep 1 2 touch "foo @" will not create two files "foo 1" and "foo 2"; rather it creates three files "foo", "1", and "2". There may be a way to get the quoting right using printf and %q, but it's going to be tricky to get an arbitrary sequence of words correctly quoted into a single string to pass to sh -c. –  chepner Sep 16 '13 at 14:01
    
OP asked for more concise, so why are you adding something like this, when there are already 5 more concise answers? –  zoska Sep 16 '13 at 14:26
    
Once you define the definition of rep in your .bashrc, further invocations become a lot more concise. –  musiphil Jan 21 at 17:51

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