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say i have a dict: d = {'Abc':5,'Jack':4,'amy':9,'Tom':0,'abc':5}

If i want to write a function such that if i pass that function to the built-in sort function, eg. list(d).sort(function), the sort function will sort the list based on the values, of any have identical values, sort them by their keys(alphabetical order). So, in this case, d = {'Abc':5,'Jack':4,'amy':9,'Tom':0,'abc':5,'TAM':0} returns ['amy','Abc','abc','Jack','TAM','Tom'] The function should look something like this:

def arrange_items(something, thing,**may be a function**): 
        if something < thing:
                return -1 
        elif something > thing:
                return 1 
        etc

if i call some_list.sort(arrange_items), i should get a sorted list back

Thank you in advance

Modification of specification(Another question): if i have a dict of twitter users name, the dict is in this format:

dict = {'JohnZ':{'name': Jonny Zue,'follow':'MiniT',}, etc} # JohnZ is one of the twitter user. The follow means people that JonhZ follows, in this case it is MiniT.

Popularity of a user means the number of people that follow this particular user, in the above example, the popularity of MiniT is at least one b/c there is at least one user who follow MiniT.

say i have a list of twitter user names, say L1 = ['JonhZ','MiniT',etc], and i want to sort L1 based on the users popularity (higher popularity comes first). dict is already defined in global namespace(we can directly access dict).The requirement for this sort function is to use L1.sort(pass_function) How should i write the pass_function such that sort will automatically sort L1 based on the popularity of the users.

Thanks for helping

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2 Answers 2

[k for k, v in sorted(d.iteritems(), key=lambda x: (-x[1], x[0].lower()))]

EDIT:

(I refuse to use the name "dict" since it shadows a builtin, and shadowing builtins is stupid)

L1.sort(key=lambda x: (-d.get(x, 0), x.lower()))
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saying something is "stupid" isn't helpful. shadowing built ins can be dangerous and cumbersome for the interpreter and for future coders. but not "stupid" –  franklin Jul 6 '13 at 19:18

You can't achieve this with list(d).sort(function), because you'll get a list with dictionary keys. You can achieve your objective with alternative approach:

l1 = sorted(d.items(), key=lambda x: (x[1], x[0]))
l2 = sorted(l1, key=lambda x: x[1], reverse=True)
result = [x[0] for x in l2]

This approach converts dictionary to list of (key, value) tuples. Then l1 is sorted by values and l2 is sorted by keys. Since python has a stable sorting algorithm, the order of values is preserved for identical keys.

Edit: Ignacio Vazquez-Abrar's approach is similar, but more elegant, because the list need to be sorted only once.

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