This question already has an answer here:
I am having a problem with builtin sequences (ie: not using seq) in Bash when the seq number is a variable. For example, this works and print me 1 2 3:
for i in {1..3};do echo $i;done
but this :
bash-3.2$ a=3;for i in {1..$a};do echo $i;done
fail and print me {1..3} only
This works with ZSH and I know I have an alternative to make a counter thing but wondering if this is a bug or a brace expansion feature!
In Bash, brace expansion is performed before variable expansion. See Shell Expansions for the order.
$ a=7; echo {1..3} {4..$a}
1 2 3 {4..7}
If you want to use a variable, use C-style for loops as in Shawn's answer.
An alternative would be to use the double-parenthesis construct which allows C-style loops:
A=3
for (( i=1; i<=$A; i++ )); do
echo $i
done
$ num=3
$ for i in $( eval echo {1..$num});do echo $i;done
1
2
3
Other option is to use seq command:
a=3; for i in $(seq 1 $a);do echo $i;done
#!/bin/bash - see comment for list of obsolete bash constructs
function f_over_range {
for i in $(eval echo {$1..$2}); do
f $i
done
}
function f {
echo $1
}
#POSIX-compliant
f_over_range() {
for i in $(eval echo {$1..$2}); do
f $i
done
}
f() {
echo $1
}
f_over_range 0 5
f_over_range 00 05
Notes:
- Using eval exposes command injection security risk
- Linux will print "00\n01\n02..etc", but OSX will print "0\n1\n2\n...etc"
- Using seq or C-style for loops won't match brace expansion's handling of leading zeros
I also needed to do somenthing like:
n=some number; {1..$n..increment}
so I used this workaround:
n=100
i=1
while [ $i -lt $n ]
do
echo $i
i=$(( $i+1 ))
done
try this:
$ start=3
$ end=5
$ echo {$(echo $start)..$(echo $end)}
来源:https://stackoverflow.com/questions/4956584/sequences-expansion-and-variable-in-bash