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I've got the following bash two scripts

a.sh:

#!/bin/bash
./b.sh 'My Argument'

b.sh:

#!/bin/bash
someApp $*

The someApp binary receives $* as 2 arguments ('My' and 'Argument') instead of 1.

I've tested several things:

  • Running someApp only thru b.sh works as expected
  • Iterate+echo the arguments in b.sh works as expected
  • Using $@ instead of $* doesn't make a difference
share|improve this question
3  
try someApp "$*" or someApp "$@" – Russell Uhl Jun 13 '13 at 18:13
    
Yupp - works like a charm! – John Fear Jun 13 '13 at 18:23
up vote 51 down vote accepted

$*, unquoted, expands to two words. You need to quote it so that someApp receives a single argument.

someApp "$*"

It's possible that you want to use $@ instead, so that someApp would receive two arguments if you were to call b.sh as

b.sh 'My first' 'My second'

With someApp "$*", someApp would receive a single argument My first My second. With someApp "$@", someApp would receive two arguments, My first and My second.

share|improve this answer
    
Great! I was so close ;-) – John Fear Jun 13 '13 at 18:24
5  
The key that is easy to miss is that "$@" needs to be quoted, it seems. $@ is not enough. – miracle2k Jun 21 '14 at 11:48
    
@miracle2k Correct. Unquoted, $@ and $* work identically. – chepner Jun 21 '14 at 14:19
    
This was immensely helpful. I kept trying to change my variable to include quotes, but having a multiple word variable, then wrap it in quotes like "$something" was the right thing! Thanks! – Matt Nov 4 '14 at 19:01

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