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The bash man says that variable expansion occurs before command substitution. I was seeking of an example that shows it clearly. So i tried this:

root@antec:/# var=1 
root@antec:/# echo $(var=2; echo $var)
2
root@antec:/#

I was expecting bash to do:
1) replace $var by "1" in the substitution
2) execute echo $(var=2; echo 1)

Obviously this is not what bash is doing ..
Can someone please explain what is going one here ? And if someone has an example showing the precedence of variable expansion over command substitution it would be nice too

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2 Answers

up vote 1 down vote accepted

I do not know what the bash man page is talking about.

The POSIX specification for the shell says:

The order of word expansion shall be as follows:

  1. Tilde expansion, parameter expansion, command substitution, and arithmetic expansion shall be performed, beginning to end.
  2. Field splitting shall be performed on the portions of the fields generated by step 1, unless IFS is null.
  3. Pathname expansion shall be performed, unless set -f is in effect.
  4. Quote removal shall always be performed last.

This makes it pretty clear that variable expansion (aka. "parameter expansion") happens at the same time as command expansion ("command substitution"), not before or after.

So I do not think the example you are asking for exists.

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In the POSIX quote, what does the "beginning to end." means then ? –  user368507 Jul 31 '11 at 19:14
    
I assume it means "left to right", although there again I cannot think of an example where it would matter. –  Nemo Jul 31 '11 at 19:35
3  
Here's a left-to-right example: a=1; echo $a $((a++)) $a prints "1 1 2" because the second $a is expanded after $((a++)) –  Gordon Davisson Aug 1 '11 at 3:30
    
@Gordon : Nice. –  Nemo Aug 1 '11 at 3:41
    
nice ! Gordon, do you confirm too that there is no examples showing that variable expansion occurs before command substitution ? –  user368507 Aug 1 '11 at 19:49
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What is happening:

a) The $() expression is executed b) Variables in var=2 are substituted c) var=2 is executed d) Variables in echo $var are substituted e) echo 2 is executed

I think a good example of variable expansion first is:

foo=echo; echo $($foo)
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I don't see how your example is showing that bash perfoms variable expansion before command substitution. Once $foo has been expanded in the subshell, the subshell executes "echo", which return an empty line. Then the main shell performs the command substitution and executes echo "". There is no race between command substitution and variable exansion. –  user368507 Jul 31 '11 at 19:07
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