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The following is a simple test case for what I want to illustrate.

In bash,

# define the function f
f () { ls $args; }

# Runs the command `ls`
f

# Runs the fommand `ls -a`
args="-a"
f

# Runs the command `ls -a -l`
args="-a -l"
f

But in zsh

# define the function f
f () { ls $args }

# Runs the command `ls`
f

# Runs the fommand `ls -a`
args="-a"
f

# I expect it to run `ls -a -l`, instead it gives me an error
args="-a -l"
f

The last line in the zsh on above, gives me the following error

ls: invalid option -- ' '
Try `ls --help' for more information.

I think zsh is executing

ls "-a -l"

which is when I get the same error.

So, how do I get bash's behavior here?

I'm not sure if I'm clear, let me know if there is something you want to know.

share|improve this question
2  
This doesn't answer your question, but I'd consider this better: f () { ls "$@"; }; f -a -l –  glenn jackman Jul 16 '11 at 5:02
    
@glenn, Yes, definitely is. As I said, this is just an illustration of a bigger problem I have, where I have to use the args variable. –  Shrikant Sharat Jul 16 '11 at 5:08
1  
@ShrikantSharat If you're writing scripts for bash and zsh (and ksh), don't do this with the args variable. Use an array instead. –  Gilles Jul 16 '11 at 9:24

1 Answer 1

up vote 11 down vote accepted

The difference is that (by default) zsh does not do word splitting for unquoted parameter expansions.

You can enable “normal” word splitting by setting the SH_WORD_SPLIT option or by using the = flag on an individual expansion:

ls ${=args}

or

setopt SH_WORD_SPLIT
ls $args

If your target shells support arrays (ksh, bash, zsh), then you may be better off using an array:

args=(-a -l)
ls "${args[@]}"

From the zsh FAQ:

From the zsh Manual:

  • 14.3 Parameter Expansion

    Note in particular the fact that words of unquoted parameters are not automatically split on whitespace unless the option SH_WORD_SPLIT is set; see references to this option below for more details. This is an important difference from other shells.

  • SH_WORD_SPLIT

    Causes field splitting to be performed on unquoted parameter expansions.

share|improve this answer
    
Yes, that's just what I wanted. I didn't know what to google or where to look for, could you point to some documentation that explains this? Thanks for the answer. –  Shrikant Sharat Jul 16 '11 at 5:04
    
Also, is the ${=args} usage compatible with bash? My tests confirm it is... –  Shrikant Sharat Jul 16 '11 at 5:11
1  
All my versions of bash (3.2.48, and 4.2.10) reject ${=…}. I am pretty sure is it specific to zsh. If you are targeting bash and zsh, then you might try an array (in my updated answer). –  Chris Johnsen Jul 16 '11 at 5:30
    
right, it doesn't work. am checking for zsh and using the SH_WORD_SPLIT option in a sub-shell. I wish I could use arrays, but I have to use a variable :) –  Shrikant Sharat Jul 16 '11 at 9:58

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