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I have a dictionary like the following. Key value pairs or username:name

d = {"user2":"Tom Cruise", "user1": "Tom Cruise"}

My problem is that i need to sort these by the Name, but if multiple users contain the same name like above, i then need to sort those by their username. I looked up the sorted function but i dont really understand the cmp parameter and the lambda. If someone could explain those and help me with this that would be great! Thanks :)

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3 Answers

up vote 6 down vote accepted

cmp is obsolescent. lambda just makes a function.

sorted(d.iteritems(), key=operator.itemgetter(1, 0))
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the thing is this is part of an assignment for my class and im not allowed to import libraries like operator. Its only builtin funcitons. I understand what you are getting at and i tried to improvise. I used "sorted(l, key=lambda l:(l[0], l[1]))", do you think this is equivalent to what you said? –  1337holiday Nov 29 '10 at 1:13
    
Not quite. lambda x: (x[1], x[0]) –  Ignacio Vazquez-Abrams Nov 29 '10 at 1:21
    
so this function is sorting the names but if the names are the same then it sorts the username, or does it keep them the same position? Because i need it so that if the names are the same then it sorts by username. Thanks alot! –  1337holiday Nov 29 '10 at 1:31
    
It sorts them by the key. The key is a tuple, and tuples sort element-wise. Element 0 is compared, but if they're the same then element 1 is compared, and so on. –  Ignacio Vazquez-Abrams Nov 29 '10 at 1:33
    
so lets say you have tuples in a list [(3,2), (1,2), (1,1)] and you want to sort them by the second values in each, if the second values are the same then sort by the first. The answer i should expect is this [(1,1), (1,2), (3,2)]. Is this what the code is doing? –  1337holiday Nov 29 '10 at 1:38
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I'm just going to elaborate on Ignacio Vazquez-Abrams's answer. cmp is deprecated. Don't use it. Use the key attribute instead.

lambda makes a function. It's an expression and so can go places that a normal def statement can't but it's body is limited to a single expression.

my_func = lambda x: x + 1

This defines a function that takes a single argument, x and returns x + 1. lambda x, y=1: x + y defines a function that takes an x argument, an optional y argument with a default value of 1 and returns x + y. As you can see, it's really just like a def statement except that it's an expression and limited to a single expression for the body.

The purpose of the key attribute is that sorted will call it for each element of the sequence to be sorted and use the value that it returns for comparison.

list_ = ['a', 'b', 'c']
sorted(list_, key=lambda x: 1)

Just read the rest for a hypothetical example. I didn't look at problem closely enough before writing this. It will still be educational though so I'll leave it up. We can't really say much more because

  1. You can't sort dicts. Do you have a list of dictss? We could sort that.
  2. You haven't shown a username key.

I'll assume that it's something like

users = [{'name': 'Tom Cruise', 'username': user234234234, 'reputation': 1},
         {'name': 'Aaron Sterling', 'username': 'aaronasterling', 'reputation': 11725}]

If you wanted to confirm that I'm more awesome than Tom Cruise, you could do:

sorted(users, key=lambda x: x['reputation'])

This just passes a function that returns the 'reputation' value for each dictionary in the list. But lambdas can be slower. Most of the time operator.itemgetter is what you want.

operator.itemgetter takes a series of keys and returns a function that takes an object and returns a tuple of the value of its argument.

so f = operator.itemgetter('name', 'username') will return essentially the same function as lambda d: (d['name'], d['username']) The difference is that it should, in principle run much faster and you don't have to look at ugly lambda expressions.

So to sort a list of dicts by name and then username, just do

sorted(list_of_dicts, operator.itemgetter('name', 'username'))

which is exactly what Ignacio Vazquez-Abrams suggested.

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It looked to me like the key is the username, and the value is the real name. –  Ignacio Vazquez-Abrams Nov 28 '10 at 23:07
    
@Ignacio - right. I somehow missed the iteritems in your solution. –  aaronasterling Nov 28 '10 at 23:15
    
OP specifies the dict as "Key value pairs or username:name" though that may have been edited in. I missed it at first. –  Josh Smeaton Nov 28 '10 at 23:20
    
@Josh Smeaton, right. I missed it. I think the or threw me off. I'm going to leave it up though because it provides a more in depth explanation of lambda, itemgetter and key than Ignacio's answer. –  aaronasterling Nov 28 '10 at 23:22
    
Definitely, I've only recently learnt about itemgetter and didn't know it could do key lookups as well as positional. +1 –  Josh Smeaton Nov 28 '10 at 23:57
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You should know that dict can't be sorted. But python 2.7 & 3.1 have this class collections.OrderedDict.

So,

>>> from collections import OrderedDict
>>> d=OrderedDict({'D':'X','B':'Z','C':'X','A':'Y'})
>>> d
OrderedDict([('A', 'Y'), ('C', 'X'), ('B', 'Z'), ('D', 'X')])
>>> OrderedDict(sorted((d.items()), key=lambda t:(t[1],t[0])))
OrderedDict([('C', 'X'), ('D', 'X'), ('A', 'Y'), ('B', 'Z')])
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yea actually it doesnt matter if its a dict, all i need is that if i have say people's names and usernames i need to sort the names but the problem arises if two or more people have the same name, in that case i need to sort those people by username (only those people). –  1337holiday Nov 29 '10 at 1:24
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