1

This question already has an answer here:

If I do this, I get the result as expected.

for i in {125..129}; do echo $i; done
125
126
127
128
129

But when I do this? I get something weired.

for i in {$((1+(25-1)*500))..$((25*500))}; do echo $i; done

{12001..12500}

I wish to pass a variable inside the loop variables like $((1+($j-1)*500))

marked as duplicate by Josh Smeaton, anishsane, Pfitz, panther, greg-449 Feb 20 '15 at 8:45

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • 2
    what does 1+(25-1)*500 equal ? – Astra Bear Feb 20 '15 at 6:59
  • 1
    How does it relate to python? – Marcin Feb 20 '15 at 6:59
  • @AstraBear 1+(25-1)*500 = 12001 :-P – Linguist Feb 20 '15 at 7:01
  • @Linguist, yes, that is my point. See answer below. Hope that helps. – Astra Bear Feb 20 '15 at 7:03
  • 1
    For the future, you should really try to describe the problem in the title rather than a generic "please help" title, so answerers have a better idea of whether they can help or not. – Josh Smeaton Feb 20 '15 at 7:03
2

Bash's brace expansion has limitations. What you want is seq:

for i in $( seq $((1+(25-1)*500)) $((25*500)) ); do echo $i; done

The above will loop over all numbers from 12001 to 12500.

Discussion

seq is similar to bash's braces:

$ echo {2..4}
2 3 4
$ echo $(seq 2 4)
2 3 4

The key advantage of seq is that its arguments can include not just arithmetic expressions, as shown above, but also shell variables:

$ x=4; echo $(seq $((x-2)) $x)
2 3 4

By contrast, the brace notation will accept neither.

seq is a GNU utility and is available on all linux systems as well as recent versions of OSX. Older BSD systems can use a similar utility called jot.

1

Brace expansion is the very first expansion that occurs, before parameter, variable, and arithmetic expansion. Brace expansion with .. only occurs if the values before and after the .. are integers or single characters. Since the arithmetic expansion in your example has not yet occurred, they aren't single characters or integers, so no brace expansion occurs.

You can force reexpansion to occur after arithmetic expansion with eval:

for i in $(eval echo {$((1+(25-1)*500))..$((25*500))}); do echo $i;
1

You query is very similar to : shell script "for" loop syntax

brace expansion, {x..y} is performed before other expansions, so you cannot use that for variable length sequences.

Instead try

for i in seq $((1+(25-1)*500)) $((25*500)); do echo $i; done

0

It is just echoing the text which is exactly as it says:

{12001..12500}

That is "{"+12001+"..."+12500+"}"

0

Don't do this with a for loop. The {..} notation is not that flexible:

i=$((1+(25-1)*500)); while test $i -le $((25*500)); do echo $((i++)); done
  • A for loop would work (see the duplicate question), but you can't use range notation. for i in $(seq $((1+(25-1)*500)) $((25*500))); do echo $i; done – Josh Smeaton Feb 20 '15 at 7:06
  • You can use a for loop, but not with brace expansion like the op is trying to do. The only trouble with seq is that it is neither portable nor standard. This is merely an example to show an alternative. – William Pursell Feb 20 '15 at 14:23
0

Try this

for (( i= $((1+(25-1)*500)); i<=$((25*500)); i++ )); do echo $i; done

or this

for i in $(seq $(( 1+(25-1)*500 )) $(( 25*500 )) ); do echo $i; done

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