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I have a following bash script:

 1  #!/bin/bash
 2  query='query= SELECT * WHERE { ?s ?p ?o } LIMIT 5'
 3  cmd="curl $1 -s -d \"$query\""
 4  echo "$cmd"
 5  # curl $1 -s -d "$query"
 6  # $cmd

5th and 6th lines must do the same. When i uncomment the 5th line, everything works fine. But with the 6th line nothing doesn't work.

So i'm wondering whats the difference?

Thanks.

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1  
and what does echo "$cmd" display? –  Andrew Tomazos Apr 8 '12 at 19:02
1  
Have you tried eval "$cmd" ? –  Mimars Apr 8 '12 at 19:04
    
echo "$cmd" displays: curl localhost:2001/sparql -s -d "query= SELECT * {}" –  Женя Гомольский Apr 8 '12 at 21:04
    
with eval everyting works fine –  Женя Гомольский Apr 8 '12 at 21:06

2 Answers 2

up vote 1 down vote accepted

Line 5 passes $query as a single argument. Line 6 passes each word of $query as a separate argument, with " at the beginning of the first and " at the end of the last. Put your arguments in an array instead.

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No; in line 4 you are just displaying the command by "echo"ing it; line 6 actually executes the command.

E.g.

$eg="ls /var/www"
echo $eg #This would literally return ls /var/www"
$eg #This would return the directory listing of /var/www/ (actually run the command).
share|improve this answer
    
I'm certain the OP already understands that. Note that the question asks how lines 5 and 6 are different, not how lines 4 and 6 are different. Line 4 seems to just be debugging. –  ruakh Apr 8 '12 at 19:59

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