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I'm quite new with Python and programming in general. My problem concerns the operations through which I could find the list with the fewest elements in a dictionary. To be clear I have a dictionary with about ten keys, and each key is a list with a lot of elements. I need to iterate over the list with the fewest elements. To find it I tried to define a function that do this work:

def minlist(*lists):
smallest = min(len(lists))
if len(lists) == smallest:
    return lists

But the response was TypeError: 'int' object is not iterable. How can I manage that, taking in mind that in principle I don't know the numbers of keys? Here a sample of my dictionary (as required)

{97: [1007928679693166, 1007928798219684, 1007928814680980, 1007928891466688, 1007928897515544, 1007928997487142], 98: [1007928837651593, 1007928889730933], 99: [1007928797944536, 1007928805518205, 1007928870847877, 1007929012532919, 1007929030905896, 1007929097107140], 688: [1007928628309796, 1007928724910684, 1007928808626541, 1007928866265101, 1007928908312998, 1007928982161920, 1007929013746703, 1007929055652413], 734: [1007928687611100, 1007928923969018, 1007928933749030, 1007928942892766, 1007929021773704], 1764: [1007928765771998, 1007928917743164], 1765: [1007928894040229, 1007929021413611], 1773: [1007929003959617]}

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Is this homework? –  user647772 Jan 31 '12 at 9:30
    
A list cannot be a key!! Can you be clearer? (More code please) –  jimifiki Jan 31 '12 at 9:32
    
The code you posted will give you syntax errors above all else. –  user647772 Jan 31 '12 at 9:33
    
You should clarify you question. Providing a sample of the dictionary would be a great start. –  Nicoretti Jan 31 '12 at 9:47
    
Not homework! :) –  Stefano Messina Jan 31 '12 at 11:06

3 Answers 3

up vote 0 down vote accepted

Here is a solution using a intermediate list of tuples for easy sort/access:

input_dict = {1: [1,2,3,4], 2: [2,3,4], 3:[1,2,3]}
#Get key/length(list) type tuples
helper = [(key, len(input_dict[key])) for key in input_dict.keys()]
#Sort list by the second element of the tuple(the length of the list) 
helper.sort(key=lambda x: x[1])

#Now the first position hold the key to the shortest list from the dicitonary and the length
print input_dict[helper[0][0]]
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thank you! It works fine –  Stefano Messina Jan 31 '12 at 11:29

I suppose you wanna do this:

def minlist(lists_dict):
  min_list = None
  for list in lists_dict.values():
    if min_list == None: 
      min_list = list
    else:
      if len(list) < len(min_list):
        min_list = list

    return min_list

Why lists_dict.values()? By default you iterate over the keys of the dictionary. But you wanna check the length of the associated values => therefore you have to use them.

The structure of the dictionary I assumed looks like this:

# { int: list, int: list, ...}
# e.g.:
lists_dict = {1: [2,3], 2: [2,3,4,5], 3: [1], 4: [1,2,2]}

The structure you've described:

# { list: list, list: list, ...}

wouldn't work, you can't use standard list as key for an dictionary.

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1  
it seems working but for some strange reason it returns the list with the "maximum" number of elements, while using max() it returns the list with fewer elements. –  Stefano Messina Jan 31 '12 at 9:59
    
Oh I just recognized thats because, how the lists compared within the min function. I adjusted the code above to work correctly. That the result is depending on length of the lists. Isn't the shortest one but works :). You should use this one or the one from Bogdan –  Nicoretti Jan 31 '12 at 10:26

here is an even shorter version using list comprehension :

min_list=min([len(ls) for ls in dict.values()])

edit : this is also usable using generator comprehensions (surround the expresion in round brackets instead of square ones) for a more efficient version

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