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In , I'd like to get the name of the one-and-only subfolder of a:

cd /tmp; mkdir -p a/b; v=$(ls -1 a); echo "$v"

outputs:

b

Which is what I wanted.

This works, because I know there will be only one-and-only subfolder inside a.

Feel free to assume this is guaranteed in all cases in my scenario.

What I feel uneasy about, is this recommendation from Bash pitfalls

In addition to this, the use of ls is just plain unnecessary.
It's an external command whose output is intended specifically
to be read by a human, not parsed by a script.

This is even more intimidating and lapidary (from the same link as above):


parsing the output of ls -- a utility whose output should never ever be parsed.


It resonates with me but this, an attempt at using globbing, obv. does not work:

 cd /tmp; mkdir -p a/b; v=a/*; echo "$v"

outputs:

a/*

Sadness.

So, how can I get globbing for a variable assignment?

I think I know how to leverage globbing outside of assignment..

for d in a/*; do echo "$(basename $d)"; done

outputs:

b

"The right answer" (TM).

Could you kindly teach me how to do this right and explain the principle behind it too, please?

** NOTE: I don't like the output of this command:**

cd /tmp; w='name with blanks'; mkdir -p "$w/b"; v=$(echo "$w"/*); echo "$v"

which is:

name with blanks/b

I'd like to just get:

b

do I have to use basename afterwards, or could I get b directly, somehow?

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possible duplicate of How to manually expand a special variable (ex: ~ tilde) in bash –  Pumbaa80 Apr 4 '13 at 3:28
    
I dispute the duplicate. There are much finer points in here, about use of subshells, builtins Vs external commands, quoting of blank-separated path names, etc. –  Robottinosino Apr 4 '13 at 3:30
    
Where? I must be blind. –  Pumbaa80 Apr 4 '13 at 3:43
    
In the comments. –  Robottinosino Apr 4 '13 at 4:06

2 Answers 2

up vote 1 down vote accepted

Pretty sure I wrote that pitfalls sentence. Anyway... yours fails because brace expansions, globs, and word-splitting don't apply to scalar assignments.

printf -v v %s */

And a little-known trick that will only work using the coreutils printf(1) (assuming there were multiple directories).

v=$(LC_COLLATE=C; /usr/bin/printf '%s\c' */)

Or alternatively, this is probably closest to what you're after (GNU find):

v=$(find . -maxdepth 1 -type d -name '[^.]?*' -printf %f -quit)

See also: http://mywiki.wooledge.org/ParsingLs

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Of course this is much more elegant! Switching answers! Why more elegant? No subshell. +1. No need to cd. +1. Using a builtin. +1. Awesome. –  Robottinosino Apr 5 '13 at 4:46
1  
@Robottinosino If you have a lot of shell questions consider joining #bash on Freenode. There's also the official help-bash mailing list, as well as the comp.unix.shell newsgroup. These have many more experts in this area than stack overflow. –  ormaaj Apr 6 '13 at 5:02
    
Will do! Thanks! –  Robottinosino Apr 6 '13 at 5:18
v=$(cd a;echo *)

Wildcards are expanded inside command substitution, and echo will output it so it will be used in the assignment.

The cd will allow you to just get the basename without calling basename.

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Would you consider this superior or equivalent to ls -1 a, and why? One this is that type echo yields echo is a shell builtin so: not an external program.. –  Robottinosino Apr 4 '13 at 3:06
1  
echo is a shell built-in, so it doesn't have to run another program. –  Barmar Apr 4 '13 at 3:06
    
Right. That's absolutely in favour of echo then, completely agree. Does the $(...) command substitution spawn a subshell though, in the case of a shell builtin? –  Robottinosino Apr 4 '13 at 3:08
1  
Aliases aren't usually expanded in shell scripts. –  Barmar Apr 4 '13 at 3:10
1  
See my use of cd. –  Barmar Apr 4 '13 at 3:24

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