Is it possible to do something like this:
start=1
end=10
echo {$start..$end}
# Ouput: {1..10}
# Expected: 1 2 3 ... 10 (echo {1..10})
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7 Answers
In bash, brace expansion happens before variable expansion, so this is not directly possible.
Instead, use an arithmetic for loop:
start=1
end=10
for ((i=start; i<=end; i++))
do
echo "i: $i"
done
OUTPUT
i: 1
i: 2
i: 3
i: 4
i: 5
i: 6
i: 7
i: 8
i: 9
i: 10
answered May 31, 2011 at 17:42
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1
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it's possible, but it is a little bit ugly because one starts another shell to do the variable expansion before the brace expansion:
start=1;end=10;for i in $(bash -c "echo {$start..$end}");do echo $i;done– syssMar 20, 2018 at 13:37
You should consider using seq(1). You can also use eval:
eval echo {$start..$end}
And here is seq
seq -s' ' $start $end
answered May 31, 2011 at 17:24
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8
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3@Tyilo What shell/OS are you in? Solaris? I've never seen seq not present on any Linux distro. In fact, its even in the GNU coreutils: gnu.org/s/coreutils/manual/html_node/seq-invocation.html– opsguyMay 31, 2011 at 18:16
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3@opsguy coreutils != POSIX standard. Sure, it's there in Linux, but there's more operating systems in the world. Sep 27, 2013 at 4:02
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1For what it is worth, "deprecated" does not mean the same thing as "isn't advisable"– matt bJan 12, 2017 at 20:51
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3using
evalis as horrid here as in most other places, don't get used to it or you'll find yourself leaving command injection vulnerabilities some day– ilkkachuMay 16, 2017 at 13:34
You have to use eval:
eval echo {$start..$end}
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9That's like using a jackhammer to pound a nail. It's dangerous (literally, introduces potential shell injection vulnerabilities if any of your values come from untrusted inputs), and not the right tool for the job.
for ((i=start; i<end; i++)); do ...; done. Sep 26, 2013 at 20:17
If you don't have seq, you might want to stick with a plain for loop
for (( i=start; i<=end; i++ )); do printf "%d " $i; done; echo ""
answered May 31, 2011 at 17:45
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This is the only working non-scary (ie not eval) answer. Did not know bash had c style loops Mar 1, 2021 at 22:47
I normally just do this:
echo `seq $start $end`
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seqis a non-standard tool (literally, not specified in POSIX). Sep 26, 2013 at 20:18 -
2Let alone the fact that
seqis non-standard, but the echo + command substitution is just a silly combination.– ilkkachuMay 16, 2017 at 13:32 -
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1@BrunoBronosky, well, the bigger difference is that the unquoted command substitution folds the whitespace to single spaces (unless
IFSis changed from the default). So you get the numbers all on the same line, not one line each like the default withseq. But if you want that, you could just useseq -w ' ' 1 10. If you do quote the command substitution, on the other hand, thenecho "$(seq 1 10)"andseq 1 10have exactly the same output. Command substitution strips trailing newlines (there's one), andechoadds one back.– ilkkachuJan 29, 2019 at 19:48
Are you positive it has be BASH? ZSH handles this the way you want. This won't work in BASH because brace expansion happens before any other expansion type, such as variable expansion. So you will need to use an alternative method.
Any particular reason you need to combine brace and variable expansion? Perhaps a different approach to your problem will obviate the need for this.
answered May 31, 2011 at 17:56
use -s ex: seq -s ' ' 1 10 output: 1 2 3 4 5 6 7 8 9 10
