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It seams wrong to repeat the same string twice

grep -q '+::::::' /etc/passwd || echo '+::::::' >> /etc/passwd

but if I do

{
local a='+::::::'
local b="/etc/passwd"
grep -q $a $b || echo $a >> $b
}

bash complains

-bash: local: can only be used in a function

Question

Is there a way to do local variables in Bash similar to how Perl does with the { ... }?

share|improve this question
    
You can try var_name=var_$RANDOM & then use eval $var_name=value for assignment & ${!varname} to de-reference... Then unset $var_name – anishsane May 12 '14 at 15:00
up vote 3 down vote accepted

For your specific example, you can use a subshell, which effectively localizes all variables assigned within.

(
a='+::::::'
b="/etc/passwd"
grep -q "$a" "$b" || echo "$a" >> "$b"
)
share|improve this answer
    
In BASH 3 even local is allowed inside { and } I am using 3.2.51 – anubhava May 12 '14 at 15:13
    
@anubhava local does not work inside a {...} compound command that isn't the body of a function definition. – chepner May 12 '14 at 15:17
    
I wouldn't have commented without testing. That is the behavior I notice in bash 3.2.51 but yes bash 4+ does complain about this. – anubhava May 12 '14 at 15:20
    
Strange; { local a=foo; } throws the expected error for me in 3.2.51 as well. – chepner May 12 '14 at 15:21
    
Hmm I am on OSX and { local a=foo; } works fine. – anubhava May 12 '14 at 15:23

At least not with { ... }.

The Advanced Bash-Scripting Guide states that code blocks created with { ... } create an anonymous function, but all variables will still be visible to the remainder of the script.

This might be the wrong terminology as chepner stated.

The man page of bash, calling it group command has the following to say:

   { list; }
          list is simply executed in the current shell environment.  list must be terminated
          with a newline or semicolon.  This is known as a group command.  The return status
          is the exit status of list.  Note that unlike the metacharacters ( and ), { and  }
          are  reserved words and must occur where a reserved word is permitted to be recog‐
          nized.  Since they do not cause a word break, they must be separated from list  by
          whitespace or another shell metacharacter.

Here is some more info in local variables and their scope.

share|improve this answer
2  
A {...} is not an anonymous function, which is why local does not work inside them. – chepner May 12 '14 at 15:06
1  
(This is another example of the Advanced Bash-Scripting Guide being wrong.) – chepner May 12 '14 at 15:18
    
Updated the answer! Thanks chepner! – mofoe May 12 '14 at 16:58

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