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I have one little problem with my php exec script. It looks like this:

exec('timeout 6 sshpass -p '.$pass_verify.' ssh-copy-id "root@'.ip_verify.' -p '.port_verify.'"'); 

But I want the parameter "pass_verify" was in single quotes. I tried to ''' but it doesn't work. This script has to exec the Linux command:

sshpass -p 'pass_verify' ssh-copy-id "root@ip_verify -p port_verify"

Can you help me? :) Thanks in advance.

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Use us.php.net/escapeshellarg to escape all arguments passed to exec, one by one. –  DCoder Jul 28 '13 at 9:52
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2 Answers

Does escaping it not work? i.e. \'

exec('timeout 6 sshpass -p \''.$pass_verify.'\' ssh-copy-id "root@'.$ip_verify.' -p '.$port_verify.'"');

As Amal pointed out, you are also missing dollar signs on your other variables (unless these were supposed to be constants?)

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Thanks! :) It's working ;D –  Kamil Basista Jul 28 '13 at 9:56
    
I was too rushed .. probably not work .. –  Kamil Basista Jul 28 '13 at 10:01
    
Probably? What's not working? Do you get an error? –  SmokeyPHP Jul 28 '13 at 10:04
    
No error, but site loads fast.. Too fast.. And there is no effect.. Like there is a problem with vars. Like no single quotes :/ –  Kamil Basista Jul 28 '13 at 10:07
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You're missing the dollar sign.

exec('timeout 6 sshpass -p '.$pass_verify.' 
ssh-copy-id "root@'.$ip_verify.' -p '.$port_verify.'"');
--------------------^-----------------^
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I know, I know ;D But I have problems with quotes, not vars :) –  Kamil Basista Jul 28 '13 at 9:55
    
@KamilBasista: Can you post the exact command you're trying to eval()? –  anon Jul 28 '13 at 9:56
    
hastebin.com/gegitixoma.php –  Kamil Basista Jul 28 '13 at 10:05
    
@KamilBasista: No, that's the PHP code. What is the Linux command you're trying to execute with eval()? –  anon Jul 28 '13 at 10:16
    
sshpass -p 'pass_verify' ssh-copy-id "root@ip_verify -p port_verify" I posted it in first post ;D –  Kamil Basista Jul 28 '13 at 10:21
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