问题
Here is myscript.sh
#!/bin/bash
for i in {1..$1};
do
echo $1 $i;
done
If I run myscript.sh 3 the output is
3 {1..3}
instead of
3 1
3 2
3 3
Clearly $3 contains the right value, so why doesn't for i in {1..$1} behave the same as if I had written for i in {1..3} directly?
回答1:
You should use a C-style for loop to accomplish this:
for ((i=1; i<=$1; i++)); do
echo $i
done
This avoids external commands and nasty eval statements.
回答2:
Because brace expansion occurs before expansion of variables. http://www.gnu.org/software/bash/manual/bashref.html#Brace-Expansion.
If you want to use braces, you could so something grim like this:
for i in `eval echo {1..$1}`;
do
echo $1 $i;
done
Summary: Bash is vile.
回答3:
You can use seq command:
for i in `seq 1 $1`
Or you can use the C-style for...loop:
for((i=1;i<=$1;i++))
回答4:
Here is a way to expand variables inside braces without eval:
end=3
declare -a 'range=({'"1..$end"'})'
We now have a nice array of numbers:
for i in ${range[@]};do echo $i;done
1
2
3
回答5:
I know you've mentioned bash in the heading, but I would add that 'for i in {$1..$2}' works as intended in zsh. If your system has zsh installed, you can just change your shebang to zsh.
Using zsh with the example 'for i in {$1..$2}' also has the added benefit that $1 can be less than $2 and it still works, something that would require quite a bit of messing about if you wanted that kind of flexibility with a C-style for loop.
来源:https://stackoverflow.com/questions/9911056/using-a-variable-in-brace-expansion-range-fed-to-a-for-loop