Shell script "for" loop syntax

I have gotten the following to work:

for i in {2..10}
do echo "output: $i"
done

It produces a bunch of lines of output: 2, output: 3, so on.

However, trying to run the following:

max=10
for i in {2..$max}
do echo "$i"
done

produces the following:

output: {2..10}

How can I get the compiler to realize it should treat $max as the other end of the array, and not part of a string?

6

11 Answers

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

Instead, use the seq 2 $max method as user mob stated.

So, for your example it would be:

max=10
for i in `seq 2 $max`
do echo "$i"
done
3

Try the arithmetic-expression version of for:

max=10
for (( i=2; i <= $max; ++i ))
do echo "$i"
done

This is available in most versions of bash, and should be Bourne shell (sh) compatible also.

2

Step the loop manually:

i=0
max=10
while [ $i -lt $max ]
do echo "output: $i" true $(( i++ ))
done

If you don’t have to be totally POSIX, you can use the arithmetic for loop:

max=10
for (( i=0; i &lt max; i++ )); do echo "output: $i"; done

Or use jot(1) on BSD systems:

for i in $( jot 0 10 ); do echo "output: $i"; done
2

If the seq command available on your system:

for i in `seq 2 $max`
do echo "output: $i"
done

If not, then use poor man's seq with perl:

seq=`perl -e "\$,=' ';print 2..$max"`
for i in $seq
do echo "output: $i"
done

Watch those quote marks.

0

We can iterate loop like as C programming.

#!/bin/bash
for ((i=1; i<=20; i=i+1))
do echo $i
done

There's more than one way to do it.

max=10
for i in `eval "echo {2..$max}"`
do echo "$i"
done
2

This is a way:
Bash:

max=10
for i in $(bash -c "echo {2..${max}}"); do echo $i; done

The above Bash way will work for ksh and zsh too, when bash -c is replaced with ksh -c or zsh -c respectively.

Note: for i in {2..${max}}; do echo $i; done works in zsh and ksh.

Well, as I didn't have the seq command installed on my system (Mac OS X v10.6.1 (Snow Leopard)), I ended up using a while loop instead:

max=5
i=1
while [ $max -gt $i ]
do (stuff)
done

*Shrugs* Whatever works.

1

Here it worked on Mac OS X.

It includes the example of a BSD date, how to increment and decrement the date also:

for ((i=28; i>=6 ; i--));
do dat=`date -v-${i}d -j "+%Y%m%d"` echo $dat
done

These all do {1..8} and should all be POSIX. They also will not break if you put a conditional continue in the loop. The canonical way:

f=
while [ $((f+=1)) -le 8 ]
do echo $f
done

Another way:

g=
while g=${g}1 [ ${#g} -le 8 ]
do echo ${#g}
done

and another:

set --
while set $* . [ ${#} -le 8 ]
do echo ${#}
done

Use:

max=10
for i in `eval echo {2..$max}`
do echo $i
done

You need the explicit 'eval' call to reevaluate the {} after variable substitution.

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