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I am trying to shell execute commands with options using Popen in python 2.6.8. I noticed that I am unable to do so using the shell=True. However, the default case (shell by default is False) works fine.

Here is the shell=True code:

>>> import subprocess
>>> 
>>> 
>>> p = subprocess.Popen(['ls','-l'],shell=True,stdout=subprocess.PIPE)
>>> o = p.communicate()[0]
>>> o
'cmd.py\ncmd.py.~1~\ncmd.pyc'

Here is the same ls -l without shell=True:

    >>> p1 = subprocess.Popen(['ls','-l'],stdout=subprocess.PIPE)
    >>> o1 = p1.communicate()[0]
    >>> o1
    'total 27218
-rwxrwxrwx   1 bkaithpa staff       3660 Jan 15 17:05 cmd.py
-rwxrwxrwx   1 bkaithpa staff       3660 Jun  6  2013 cmd.py.~1~
-rwxrwxrwx   1 bkaithpa staff       4139 Jun  6  2013 cmd.pyc
    >>> 

Does anyone know why this is the case ??

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2  
you shouldn't use shell=True anyway, because it can lead to unpredictable behaviour. The '-l' is interpreted by the shell and so it's ignored. –  Daniel May 1 '14 at 18:55
    
thanks you.... I will make sure I dont use shell=True to avoid shell injection attacks. –  tomkaith13 May 1 '14 at 20:28

1 Answer 1

up vote 2 down vote accepted

When you use shell=True, pass the whole command as a string:

p = subprocess.Popen("ls -l",shell=True,stdout=subprocess.PIPE)

Daniel's point about shell=True being dangerous is valid, though.

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Did not know that shell-True needed the command without split... Thanks for this –  tomkaith13 May 1 '14 at 20:28

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