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What is the "best" way to open a variable number of files in python?

I can't fathom how to use "with" if the number of files is not known before-hand.

(Incoming from RAII/C++)

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Relevant stackoverflow.com/questions/5071121/… –  shadyabhi Jan 28 '12 at 1:14
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I can't fathom what "the number of files is not known before-hand" can possibly mean. Can you provide an explanation for this algorithm which opens (and keeps open) an unknown number of files. –  S.Lott Jan 28 '12 at 3:27
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Example: a script that takes a variable number of filenames on the command-line and interleaves them all line-by-line to stdout . –  user1174648 Jan 28 '12 at 8:36

1 Answer 1

Well, you could define your own context manager that took a list of (filename, mode) pairs and returned a list of open file handles (and then closed all of those handles when the contextmanager exits).

See http://docs.python.org/reference/datamodel.html#context-managers and http://docs.python.org/library/contextlib.html for more details on how to define your own context managers.

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This fits the bill perfectly. –  user1174648 Jan 28 '12 at 8:22
    
After your clear description and a re-read of the context-manager docs this seems very obvious to me - now. So thanks for being gentle with a newbie! –  user1174648 Jan 28 '12 at 8:33
    
If this answer met your needs, please mark it as accepted by clicking the outline of a checkmark next to it. Thanks! –  Amber Jan 28 '12 at 23:32

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