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I have a main function that contains two dictionaries that I would like to output. I have omitted how the dictionaries were created.

here's my function:

def main()
    dict1 = {'a1':{'b1':1,'c1':2},'a2':{'b2':1,'c2':2}}
    dict2 = {'cat':0,'dog':2}
    return dict1, dict2
if __main__ == '__main__':
>...main()

here's how I'm calling it in the python prompt:

>>from filename import *
>>x,y=main()

More or less this is what I'm getting

>>print x
'a1'
>>print y
'a2'

But this is what I want:

>>print x
{'a1':{'b1':1,'c1':2},'a2':{'b2':1,'c2':2}}
>>print y
{'cat':0,'dog':2}

What am I not doing right?

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1  
I copied your code in my compiler, and it works just fine... –  Martol1ni May 15 '12 at 22:00
5  
You're not showing the actual code. Please don't post something that you did not test. –  larsmans May 15 '12 at 22:00
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2 Answers 2

up vote 2 down vote accepted

The code already does exactly what you expect it to:

In [4]: def main():
   ...:     dict1 = {'a1':{'b1':1,'c1':2},'a2':{'b2':1,'c2':2}}
   ...:     dict2 = {'cat':0,'dog':2}
   ...:     return dict1, dict2
   ...: 

In [5]: x, y = main()

In [6]: x
Out[6]: {'a1': {'b1': 1, 'c1': 2}, 'a2': {'b2': 1, 'c2': 2}}

In [7]: y
Out[7]: {'cat': 0, 'dog': 2}

Perhaps you're accidentally calling a different main() function (e.g. one that has a different return statement)?

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You're not returning dict1, dict2, just dict1. You can easily reproduce this behavior:

>>> dict1 = {'a1': 'some_stuff', 'a2': 'some_other_stuff'}
>>> dict2 = {'cat': 0, 'dog': 0}
>>> return_val = dict1
>>> x, y = return_val
>>> x
'a1'
>>> y
'a2'
>>> return_val = dict1, dict2
>>> x, y = return_val
>>> x
{'a1': 'some_stuff', 'a2': 'some_other_stuff'}
>>> y
{'cat': 0, 'dog': 0}

This happens because when you iterate over a dictionary you get its keys, so when you do x, y = main() and main returns dict1, you iterate over the keys of dict1. Since there happen to be two of them, you don't get an error and x and y take the value of those keys.

If you change main to return both dictionaries, you should be fine.

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The code he posted returns the two dictionaries, so it should be fine. The code he is executing doesn't. –  cvoinescu May 15 '12 at 22:08
    
@cvoinescu Yes, the code he posted is fine. But it is obviously not his real code, so it's not what I address in my answer. It would be nice if people asking questions didn't make that kind of error, but at least in this case the real problem is clear. –  agf May 15 '12 at 22:11
    
Maybe he's executing old code because he doesn't know how to reload the module (reload(filename)) to apply the changes he made to filename.py? –  cvoinescu May 15 '12 at 22:21
    
@cvoinescu There are lots of reasons it could be. He could have more than one filename.py, he could need to restart his interpreter, etc. But the reason he gets the output he does is that the code he's running is returning only one dictionary. –  agf May 15 '12 at 23:05
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