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I need to write a bash script that prints out its command line arguments in sorted order, one per line.

I wrote this script and it works fine, but is there any other way? Especially without outputting it to a file and sorting.

#!/bin/bash

for var in $*
do
    echo $var >> file
done

sort file
rm file

Test run of the program:

$ script hello  goodbye zzz aa
aa
goodbye
hello
zzz
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2 Answers 2

up vote 5 down vote accepted
#!/bin/bash

for var in "$@"; do
    echo "$var"
done | sort

You want to use $@ in quotes (instead of $*) to accommodate arguments with spaces, such as

script hello "goodbye, cruel world"

The pipe gets rid of the need for a temporary file.

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$var also needs quotes, else word splitting and pathname expansion will be attempted after the variable has been expanded. –  geirha Jul 17 '12 at 17:57
    
Good point, I was only thinking of the line being passed whole to sort. –  chepner Jul 17 '12 at 18:05
    
@chepner, How about sorting the following arguments based on the first argument which determines the size of the input? –  ThisGuy Dec 4 '13 at 14:58
    
You can simply discard the first argument by adding a call to shift prior to the for loop. –  chepner Dec 4 '13 at 15:14

You can pipe the for-loop to sort, or just do

printf '%s\n' "$@" | sort
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I always forget about the implicit loop provided by printf. –  chepner Jul 17 '12 at 17:16

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