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It's probably a lame question. But I am getting 3 arguments from command line [ bash script ]. Then I am trying to use these in a for loop.

for i in {$1..$2}
    do action1
done

This doesn't seem to work though. I referred to various examples and this appears to be the correct usage. Can someone please tell me what needs to be fixed here?

Thanks in advance.

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5 Answers

up vote 21 down vote accepted

How about:

for i in $(eval echo {$1..$2}); do echo $i; done
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worked like a charm. Thnx zxt. –  ru4mqart668op514 Apr 17 '11 at 3:09
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You can slice the input using ${@:3} or ${@:3:8} and then loop over it

For eg., to print arguments starting from 3

for i in ${@:3} ; do echo $i; done

or to print 8 arguments starting from 3 (so, arguments 3 through 10)

for i in ${@:3:8} ; do echo $i; done
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Use the $@ variable?

for i in $@
do
    echo $i
done

If you just want to use 1st and 2nd argument , just

for i in $1 $2 

If your $1 and $2 are integers and you want to create a range, use the C for loop syntax (bash)

for ((i=$1;i<=$2;i++))
do
...
done
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You might want to only include the second part of the answer - It's better than using eval and fits the question. –  l0b0 Oct 14 '11 at 7:38
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I had a similar problem. I think the issue is with dereferencing $1 within the braces '{}'. The following alternative worked for me ..

#!/bin/bash
for ((i=$1;i<=$2;i++))
do
   ...
done

Hope that helps.

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+1 IMO This is cleaner than having to eval as in the accepted answer, but the accepted answer is more specific to the OP –  nhed Oct 2 '13 at 16:48
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#/bin/bash
for i
do
  echo Value: $i
done

This will loop over all arguments given to the script file. Note, no "do" or anything else after the loop variable i.

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Could you explain how this loop exits, given that you've not specified a range for i? –  jam Sep 4 '13 at 8:52
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