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I have a dictionary of lists for which I want to add a value to a particular list...

d = {'a': [4, 2], 'b': [3, 4], 'c': [4, 3], 'd': [4, 3], 'e': [4], 'f': [4], 'g': [4]}

I want to add the number 2 to the just one of the lists with the smallest length.

def gsl(x):
    return [k for k in x.keys() if len(x.get(k))==min([len(n) for n in x.values()])]

after calling

>>> gsl(d)
['e', 'g', 'f']

So in this case, I want to append the number 2 to the list 'e' in the dictionary making it [4,2] (order doesnt matter.

Result should be

>>> d['e']
[4,2]

I've tried

for i in d:
    if gsl(d)[0] == i: #gets the first key with the smallest value 
        d[i].append(2) # if equal, adds 2 to the dictionary value that matches

Except that adds 2 to each 'e', 'g', 'f'.

Thanks in advance!

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Try killing the for loop and see if that helps –  inspectorG4dget Jul 31 '12 at 0:32

4 Answers 4

up vote 4 down vote accepted
>>> d = {'a': [4, 2], 'b': [3, 4], 'c': [4, 3], 'd': [4, 3], 'e': [4], 'f': [4], 'g': [4]}
>>> smallest = min(d, key=lambda k: len(d[k]))
>>> d[smallest].append(2)
>>> d
{'a': [4, 2], 'c': [4, 3], 'b': [3, 4], 'e': [4, 2], 'd': [4, 3], 'g': [4], 'f': [4]}
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What if I wanted to get the second smallest list? So not the smallest one, but the one that is right after –  user1530318 Aug 2 '12 at 21:18
1  
@user1530318 heapq will do that for you :) >>> from heapq import nsmallest >>> nsmallest(2, d, key=lambda k: len(d[k]))[-1] 'g' –  jamylak Aug 2 '12 at 21:32
    
Sweet, that works! So now that returns me the next smallest number. If I wanted to do something like hey find the smallest list and if it has a particular word it in, let's say "john" then only can you append this number. Otherwise, find the next smallest list till that happens. The best way to do this using the heapq would probably be through a recursive function right? –  user1530318 Aug 3 '12 at 15:35

How about:

d[gsl(d)[0]].append(2)

gsl(d) gets the list of keys with minimal length, 0 gets the first one, and then we get the list at that key and append 2 to it.

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The problem with your answer is that, after inserting the element in 'e', it is not anymore part of the "keys with minimum length lists", so on the next iteration it will return ['f', 'g'].

One quick fix to it is to break the loop, like this:

for i in d:
    if gsl(d)[0] == i:
        d[i].append(2)
        break

But this is a very inefficient way of doing what you want, and will fail if d is empty.

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If you're using python 2.7 or newer, you can use a view for this:

>>> d = {'a': [4, 2], 'b': [3, 4], 'c': [4, 3], 'd': [4, 3], 'e': [4], 'f': [4], 'g': [4]}
>>> min(d.viewitems(), key=lambda (k, v): len(v))[1].append(2)
>>> d
{'a': [4, 2], 'c': [4, 3], 'b': [3, 4], 'e': [4, 2], 'd': [4, 3], 'g': [4], 'f': [4]}

If you're using an older version, you can use iteritems:

>>> d = {'a': [4, 2], 'b': [3, 4], 'c': [4, 3], 'd': [4, 3], 'e': [4], 'f': [4], 'g': [4]}
>>> min(d.iteritems(), key=lambda (k, v): len(v))[1].append(2)
>>> d
{'a': [4, 2], 'c': [4, 3], 'b': [3, 4], 'e': [4, 2], 'd': [4, 3], 'g': [4], 'f': [4]}
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Actually dict.viewitems is only python 2.7. In python 3 it is the default behaviour for the dict.items method. Your second approach is what I used originally but I thought my current solution looked nicer :) Also I recently found out that tuple unpacking in functions (lambda (k, v)) is removed in Python 3 so I decided to stop using it from now on. –  jamylak Aug 1 '12 at 6:05

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