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for example, a.boo method calls b.foo method. In b.foo method, how can I get a's file name (I don't want to pass __file__ to b.foo method)...

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thanks for your answer, and I found here is the best for me now: stackoverflow.com/questions/3711184/… –  Zhenyu Li Dec 4 '12 at 9:19

2 Answers 2

up vote 4 down vote accepted

You can use the inspect module to achieve this:

frame = inspect.stack()[1]
module = inspect.getmodule(frame[0])
# Use module.__name__
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you can use the traceback module:

import traceback

and you can print the back trace like this:

print traceback.format_exc()

I haven't used this in years, but this should be enough to get you started.

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