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I've written a quite extensive shell script and some of the functionality I obtained by doing research here on stackoverflow. One of the things I implemented, but didn't fully understand, is the use of set -- something.

I've read the help set command but I'm still having trouble understanding how it's implementation works in the following scenario:

#!/bin/sh

params="$(getopt abc:d: $*)"

if I then do

set -- $params

What exactly is set doing there?

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Thanks to whoever downvoted my question without leaving any feedback! That really helps me to see how I could have made the question more clear. –  inquisitor Jun 24 '13 at 16:24
1  
The downvote is not about making it clear. It's about not doing fundamental basic research, such as reading the man page which would have answered your question immediately. The purpose of SO is to provide answers that cannot be easily found elsewhere. Questions with trivially findable answers do not contribute to the overall usefulness of SO. –  Jim Garrison Jun 24 '13 at 16:26
    
Why tag this linux? There's nothing Linux-specific about POSIX sh behavior. –  Charles Duffy Jun 24 '13 at 16:30
1  
@1_CR You and nkon both have a point. I have removed my downvote. –  Jim Garrison Jun 24 '13 at 16:32
4  
@nkon: How is anyone supposed to know you did do research? Your question would be better received if you had written something like "I read the documentation for ... but I don't understand what it means by ...." (I've neither upvoted nor downvoted.) –  Keith Thompson Jun 24 '13 at 17:29

2 Answers 2

up vote 3 down vote accepted

What set -- "$(getopt abc:d: $*)" does, in short, is create bugs. That's not specific to set, though it is necessarily incidental to use of getopt; however, it's also generic to the use of $*.

Consider the following:

./yourscript -f"./filename with spaces"

$* squashes all arguments together into a string -- after which, because it's unquoted, those arguments are split apart again according to the contents of IFS: ./filename with spaces into three arguments: ./filename, with, and spaces. Don't do that. Instead, follow the practices at http://mywiki.wooledge.org/BashFAQ/035 (yes, it's called BashFAQ, but it covers POSIX-compliant mechanisms as well as bash-specific ones).

That said, to discuss what it's INTENDED to do, the following is a working exemplar:

$ getopt abc:d: -a -c foo bar baz
 -a -c foo -- bar baz

...and the following is an example of why getopt is broken even when not using $* (see how the single argument foo bar is split apart into two separate pieces, foo and bar):

$ getopt abc:d: -a -c "foo bar" baz
 -a -c foo bar -- baz

...and the following is an example of why set -- shouldn't ever be used in conjunction with string-splitting, which is how an unquoted expansion (such as $params) is split into multiple arguments:

$ params='-f "foo bar"'
$ set -- $params
$ printf '<%s> ' "$@"; echo
<-a> <"foo> <bar">

Instead, the correct way to manage lists of items to be put into the argument list is using arrays -- a bash extension, as POSIX sh simply does not allow any correct way to do this:

$ params=( -f "foo bar" )
$ set -- "${params[@]}"
$ printf '<%s> ' "$@"; echo
<-a> <foo bar>

In any of these cases, the argument vector ($@) is changed with the new contents by set --, to put positional arguments only after all the optional arguments, separated by --. However, it's changed INCORRECTLY: Multi-word arguments are string-split and recombined wrongly. Again, see the linked FAQ for the correct way to handle this.

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Thank you very much! This is the type of explanation I was looking for, but couldn't find. This is very clear now! –  inquisitor Jun 24 '13 at 16:40
    
One more thing... (just to make sure I completely understand), params=$(getopt abc:d: $*) just takes my command-line params and splits them up. set -- $params just takes that information and sets them to positional parameters because of the arg, -- to the set command? –  inquisitor Jun 24 '13 at 17:14
    
Exactly right; params=$(getopt abc:d: $*) reorganizes your arguments to separate positional arguments from options (and totally breaks arguments with whitespace in the process), and set -- $params changes $@ according to the new values emitted by getopt (after another round of string-splitting and glob expansion, both of which are expansion stages best avoided). –  Charles Duffy Jun 24 '13 at 17:16
    
Got it. Thanks again. –  inquisitor Jun 24 '13 at 17:17
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@nkon I've updated it a bit more to provide examples of how set -- works, both when used correctly and otherwise. –  Charles Duffy Jun 24 '13 at 17:26

This is clearly covered in the bash man page.

--

If no arguments follow this option, then the positional parameters are unset. Otherwise, the positional parameters are set to the arguments, even if some of them begin with a ‘-’.

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Thanks for your answer, I should have clarified that I'm not using bash. –  inquisitor Jun 24 '13 at 16:26
    
Since bash is the de facto standard shell, you must clarify. Even so, since bash has assimilated the "best" (for some definition of "best" :-) parts of other shells, this is still likely the correct answer. –  Jim Garrison Jun 24 '13 at 16:28
    
@JimGarrison I thought not tagging bash would suffice. –  inquisitor Jun 24 '13 at 16:29
1  
Doesn't matter, because it's the same for every POSIX-standard shell. Why are we arguing about this? –  Charles Duffy Jun 24 '13 at 16:29

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