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I was just wondering if in the wonderful world of Python there is any way to go from something like this:

dict1 = {'a': [1,2,3], 'b': [4,5,6]}

to

dict2 = {'a':1, 'a':2, 'a':3,'b':4, 'b': 5, 'b': 6]

or equivalent, the order is irrelevant but I need some way of decomposing dict1 into something in which I can assign the numerical values to indices of a new list and the keys as the actual values of those indices e.g. dict1 would turn into:

[0, a, a, a, b, b, b] 

Any help would be appreciated, although the more idiot proof the answers the better.

I am indebted to you once again.

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2 Answers 2

up vote 5 down vote accepted

Your dict2 makes no sense because dictionary keys must be unique.

I am pretty sure you can get what you want by iterating over dict1.items(), but I need some more clarification on what the expected output list looks like... in your example a and b are undefined and I don't know what the 0 at the start is representing.

Perhaps you wanted something like this?

dict2 = {}
for k,v in dict1.items():
  for x in v:
    dict2[x] = k

This would give you a dict2 like {1: 'a', 2: 'a', 3: 'a', 4: 'b', 5: 'b', 6: 'b'}. Be warned that duplicate entries in the unpacked values of dict1 could be overwritten by this loop.


Just for shits and giggles, the same thing in 1 line as an incomprehensible dict comprehension:

{x: k for (k,v) in dict1.items() for x in v}

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That's what I feared, do you know of anyway of going from dict1 to the list at the end without doing the middle step? –  George Burrows Dec 15 '11 at 6:58
    
Yes, you can iterate over dict1.items().. I will update my answer –  wim Dec 15 '11 at 7:01
    
To clarify the items in the list will be strings all of which contain one word, also I only included the 0 because I started the numbering dict1 at 1 instead of 0 like an idiot. –  George Burrows Dec 15 '11 at 7:09
1  
Can’t believe I never tried to do a dict comprehension myself before. I learned something new today, thanks a lot! :o –  poke Dec 15 '11 at 7:24
1  
+1 for the phrase "incomprehensible dict comprehension" –  Lauritz V. Thaulow Dec 15 '11 at 9:47

If values represent indices then:

import itertools

dict1 = {'a': [1,2,3], 'b': [4,5,6]}

L = [None]*(max(itertools.chain(*dict1.values())) + 1)
for word, indexes in dict1.items():                          
    for i in indexes:                                     
        L[i] = word
print(L)
# -> [None, 'a', 'a', 'a', 'b', 'b', 'b']
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