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I am trying to take in a filename from a user and then use execfile() to execute the file , below is my code

print "Please enter the name of the file"
filename = raw_input().split(".")[0]
module = __import__(filename)
execfile(module)             <-- this is where I want to execute the file

I understand the execfile works like

execfile("example.py")

I am unsure on how to do this when the filename is passed as an variable . I am using python 2.7

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You already import the file, you now have executable code, why the need to run the module through the execfile() function? –  Martijn Pieters Dec 7 '12 at 20:51
    
This is being run in another program , I have no idea what the code is in the program ( whose name the user enters) , so I want to execute it and catch exceptions . Since I do not know what the main is in the undefined function , I need to execute it once –  user1801279 Dec 7 '12 at 20:57
    
related: log syntax errors and uncaught exceptions. –  J.F. Sebastian Dec 7 '12 at 21:33

1 Answer 1

up vote 4 down vote accepted

Drop the import and exec the filename. You need the .py extension with this method and it will run any if __name__ == '__main__' section:

filename = raw_input("Please enter the name of the file: ")
execfile(filename)

If you just want to import it, you need to strip the '.py' and it will not execute an if __name__ == '__main__' section:

filename = raw_input("Please enter the name of the file: ").split(".")[0]
module = __import__(filename)
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Thank you , If possible could you just give me a hint on where I went wrong? –  user1801279 Dec 7 '12 at 21:02
    
Yes , I apologise for that , I stripped it on purpose because of the fact that I do not know if the user will enter the extension .py . so just to be sure I take the input , strip it and append a .py to it –  user1801279 Dec 8 '12 at 5:40

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