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I'm trying to demonstrate the order of substitution; mainly that variable substitution, command substitution and globbing occurs in order one after the other. I executed the following command and I do not get the expected output.

bash-4.1$ a=file*
bash-4.1$ ls $(echo $($(b=$a)))

I expect the output to list all files names beginning with "file", but instead it outputs the list of all files in the directory. Any idea why?

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please read: bash doc –  kev Jun 18 '12 at 23:31

2 Answers 2

The $(...) command substitution returns the output of the command, which is blank for an assignment. So you simply end up running ls.

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Does that mean all 3 substitutions cannot be shown in one line? –  SharkTiles Jun 18 '12 at 23:23
    
Does ls $(echo "$a") work for you? (Note that there are two opportunities for globbing, so I had to turn one of them off.) –  Neil Jun 18 '12 at 23:40
    
I still get the same results :( –  SharkTiles Jun 18 '12 at 23:44

Parameter and arithmetic expansion, and command substitution are evaluated at the same time, leftmost-innermost to right. Assignments, null and empty expansions, and redirects are all valid simple commands. The assignment is lost to the subshell, and the arguments to echo expand to nothing. echo outputs a newline, but the command substitution strips it, and ls gets no args. Also, if you were expecting a=file* to do something more than assign a literal string, pathname expansion doesn't occur in assignments.

See: http://wiki.bash-hackers.org/syntax/grammar/parser_exec

And a challenge question when you figure all that out. What will be the value of x? (shows more expansion order and some small Bash quirks.)

declare -i x=0
x+=${x:-1} let x+=2 $((x+=4)) {x}<&$((x+=8,0))
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