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I wrote some statements like below:

os.system(cmd) #do something
subprocess.call('taskkill /F /IM exename.exe')

both will pop up a console.

How can I stop it from popping up the console?

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Try using spawn family instead. –  Keith Aug 10 '11 at 5:23
    

3 Answers 3

up vote 13 down vote accepted

This works for me:

startupinfo = subprocess.STARTUPINFO()
startupinfo.dwFlags |= subprocess.STARTF_USESHOWWINDOW
subprocess.call('taskkill /F /IM exename.exe', startupinfo=startupinfo)
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Thank you, it works. –  Synapse Aug 10 '11 at 6:10

Add the shell=True argument to the subprocess calls.

subprocess.call('taskkill /F /IM exename.exe', shell=True)

Or, if you don't need to wait for it, use subprocess.Popen rather than subprocess.call.

subprocess.Popen('taskkill /F /IM exename.exe', shell=True)
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Sure, the startupinfo technique works, but this one's shorter (but put a comment in to indicate why you're using shell=True otherwise it probably wouldn't be as obvious). –  Chris Morgan Sep 22 '11 at 2:56
    
Hmm, for some reason my executable not running when using shell=True. But it run just fine when using startupinfo. –  arifwn Sep 20 '12 at 21:05
    
@arifwn: post a new question, please. –  Chris Morgan Sep 21 '12 at 7:32
1  
+1 for brevity. This way has subprocess configure STARTUPINFO for you. Note that running via cmd /c should only be used with trusted commands. In this case it's OK. –  eryksun Jul 24 '13 at 15:48

Try subprocess.Popen(["function","option1","option2"],shell=False).

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sorry, the stuff I want to invoke cannot be run by subprocess.Popen, coz exception raised "invalid win32 app". But os.system can run it without any warning. –  Synapse Aug 10 '11 at 6:11
    
Er, that's not a problem with subprocess; I can run it on Windows 7, natively (Python 2.7.2) as well as under Cygwin (Python 2.6.5), with no warnings. –  Quin Aug 11 '11 at 23:35

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