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I have the following Python array of dictionaries:

myarr = [ { 'name': 'Richard', 'rank': 1 },
{ 'name': 'Reuben', 'rank': 4 },
{ 'name': 'Reece', 'rank': 0 },
{ 'name': 'Rohan', 'rank': 3 },
{ 'name': 'Ralph', 'rank': 2 },
{ 'name': 'Raphael', 'rank': 0 },
{ 'name': 'Robin', 'rank': 0 } ]

I'd like to sort it by the rank values, ordering as follows: 1-2-3-4-0-0-0.

If I try:

sorted_master_list = sorted(myarr, key=itemgetter('rank'))

then the list is sorted in the order 0-0-0-1-2-3-4.

How can I define a custom comparator function to push zeroes to the bottom of the list? I'm wondering if I can use something like methodcaller.

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8 Answers 8

up vote 21 down vote accepted

Option 1:

key=lambda d:(d['rank']==0, d['rank'])

Option 2:

key=lambda d:d['rank'] if d['rank']!=0 else float('inf')


"I'd like to sort it by the rank values, ordering as follows: 1-2-3-4-0-0-0." --original poster

>>> sorted([0,0,0,1,2,3,4], key=lambda x:(x==0, x))
[1, 2, 3, 4, 0, 0]

>>> sorted([0,0,0,1,2,3,4], key=lambda x:x if x!=0 else float('inf'))
[1, 2, 3, 4, 0, 0]


Additional comments:

"Please could you explain to me (a Python novice) what it's doing? I can see that it's a lambda, which I know is an anonymous function: what's the bit in brackets?" – OP comment

Indexing/slice notation:

itemgetter('rank') is the same thing as lambda x: x['rank'] is the same thing as the function:

def getRank(myDict):
    return myDict['rank']

The [...] is called the indexing/slice notation, see Good Primer for Python Slice Notation - Also note that someArray[n] is common notation in many programming languages for indexing, but may not support slices of the form [start:end] or [start:end:step].

key= vs cmp= vs rich comparison:

As for what is going on, there are two common ways to specify how a sorting algorithm works: one is with a key function, and the other is with a cmp function (now deprecated in python, but a lot more versatile). While a cmp function allows you to arbitrarily specify how two elements should compare (input: a,b; output: a<b or a>b or a==b). Though legitimate, it gives us no major benefit (we'd have to duplicate code in an awkward manner), and a key function is more natural for your case. (See "object rich comparison" for how to implicitly define cmp= in an elegant but possibly-excessive way.)

Implementing your key function:

Unfortunately 0 is an element of the integers and thus has a natural ordering: 0 is normally < 1,2,3... Thus if we want to impose an extra rule, we need to sort the list at a "higher level". We do this by making the key a tuple: tuples are sorted first by their 1st element, then by their 2nd element. True will always be ordered after False, so all the Trues will be ordered after the Falses; they will then sort as normal: (True,1)<(True,2)<(True,3)<..., (False,1)<(False,2)<..., (False,*)<(True,*). The alternative (option 2), merely assigns rank-0 dictionaries a value of infinity, since that is guaranteed to be above any possible rank.

More general alternative - object rich comparison:

The even more general solution would be to create a class representing records, then implement __lt__, __gt__, __eq__, __ne__, __gt__, __ge__, and all the other rich comparison operators, or alternatively just implement one of those and __eq__ and use the @functools.total_ordering decorator. This will cause objects of that class to use the custom logic whenever you use comparison operators (e.g. x=Record(name='Joe', rank=12) y=Record(...) x<y); since the sorted(...) function uses < and other comparison operators by default in a comparison sort, this will make the behavior automatic when sorting, and in other instances where you use < and other comparison operators. This may or may not be excessive depending on your use case.

Cleaner alternative - don't overload 0 with semantics:

I should however point out that it's a bit artificial to put 0s behind 1,2,3,4,etc. Whether this is justified depends on whether rank=0 really means rank=0; if rank=0 are really "lower" than rank=1 (which in turn are really "lower" than rank=2...). If this is truly the case, then your method is perfectly fine. If this is not the case, then you might consider omitting the 'rank':... entry as opposed to setting 'rank':0. Then you could sort by Lev Levitsky's answer using 'rank' in d, or by:

Option 1 with different scheme:

key=lambda d: (not 'rank' in d, d['rank'])

Option 2 with different scheme:

key=lambda d: d.get('rank', float('inf'))

sidenote: Relying on the existence of infinity in python is almost borderline a hack, making any of the mentioned solutions (tuples, object comparison), Lev's filter-then-concatenate solution, and even maybe the slightly-more-complicated cmp solution (typed up by wilson), more generalizable to other languages.

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Please explain your incorrect downvote. =) –  ninjagecko Apr 12 '12 at 18:35
Option 1 works! Thanks. –  Richard Apr 12 '12 at 18:37
Please could you explain to me (a Python novice) what it's doing? I can see that it's a lambda, which I know is an anonymous function: what's the bit in brackets? –  Richard Apr 12 '12 at 18:38
@Richard: of course =) I'll be happy to explain in my answer so everyone can follow. –  ninjagecko Apr 12 '12 at 18:40
Awesome, thanks a lot. –  Richard Apr 12 '12 at 18:50

I'd do

 sortedlist = sorted([x for x in myarr if x['rank']], key=lambda x: x['rank']) + [x for x in myarr if not x['rank']]

bit I guess it could be compressed somehow.

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I'm more leaning toward creating a compare function to handle the "0" specifically:

def compare(x,y):
    if x == y:
        return 0
    elif x == 0:
        return 1
    elif y == 0:
        return -1
        return cmp(x,y)

sorted(myarr, cmp=lambda x,y: compare(x,y), key=lambda x:x['rank'])

However, there are performance penalty on the custom compare function.

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This is the cmp solution. I like the combined use of key= and cmp= as an elegant exploitation of the way sorted's parameters work in python. In English this says "comparing elements left,right by rank: they are equal if their ranks are equal, otherwise left is larger if it's 0 or right is larger if it's 0, otherwise perform the default comparison". Tragically the first two lines are necessary, otherwise the middle lines would return wrong values before the final cmp. The alternative would be removing the top two lines, and doing: if x==0 and y!=0...elif y=0 and x!=0...else:. –  ninjagecko Apr 12 '12 at 19:26
It's worth noting that cmp goes away in Python 3. –  senderle Apr 12 '12 at 20:34

A hacky way to do it is:

sorted_master_list = sorted(myarr, key=lambda x: 99999 if x['rank'] == 0 else x['rank'])

This works fairly well if you know your maximum rank.

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This won't work. itemgetter() returns a function. When you already use a lambda, just use x['rank'] - you lose the performance advantage of using itemgetter anyway. –  ThiefMaster Apr 12 '12 at 18:35
@ThiefMaster true –  mensi Apr 12 '12 at 18:37

You're myarr binding here doesn't look like valid Python code (and doesn't execute in my interpreter session.

Rendering that into:

myarr = {
    'Richard': 1,
    'Reuben': 4,
    'Reece': 0,
    'Rohan': 3,
    'Ralph': 2,
    'Raphael': 0,
    'Robin': 0 }

Gives me something on which I could base an answer.

The recommended way to do custom sorting in Python is to use the DSU (decorate, sort, undecorate) pattern. If you want to sort a dictionary by values then that looks something like:

keys_sorted_by_val = [ x[1] for x in sorted([(v,k) for k,v in myarr.items()])]

... where (v,k) for k,v in myarr.items() is the expression to decorate; sorted() is, obviously, the sort and the outer x[1] for x in ... is the final undecorate step.

Obviously this might seem like a sufficiently common requirement that one might which to wrap this up in a function:

def dict_by_values(d):
    return [ x[1] for x in sorted([(v,k) for k,v in d.items()])]

If you had a collection of object instances that you want to sort by some attribute you can use something like this:

def sort_by_attr(attr, coll):
    results = list()
    for each in coll:
        assert hasattr(each, attr)
        results.append((getattr(each, attr), each))
    return [x[1] for x in results]

So if we created a class representing your name/rank data like this:

class NameRanking(object):
    def __init__(self, name, rank): = name
        self.rank = rank
    def __repr__(self):
        return "%s: %s, %s" %(self.__class__,, self.rank)

... and instantiate a list of those using myarr:

name_rankings = [ NameRanking(k, v) for k,v in myarr.items() ]

... then we could get a sorted copy of that using:

names_rankings_by_rank = sort_by_attr('rank', name_rankings)

(Yes the assert isn't a good idea here; that's where you would put in your own exception handling or throwing code as appropriate to your application).

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Just give pass to "key" an arbitrary function or callable object - it is what it takes. itemgetter happens to be one such function -- but it can work with any function you write - it just has to take a single parameter as input, and return an object that is directly compable to achieve the order you want.

In this case:

def key_func(item):
   return item["rank"] if item["rank"] != 0 else -100000

sorted_master_list = sorted(myarr, key=key_func)

(it can also be written as a lambda expression)

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You can use function in key param:

for ass sorting:

sorted_master_list = sorted(myarr, key=lambda x: x.get('rank'))

or to desc:

sorted_master_list = sorted(myarr, key=lambda x: -x.get('rank'))

Also you can read about sorted function here

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wow, why -2 ??? –  Rustem Apr 12 '12 at 18:39
Because you suggested a stock-standard ascending or descending sort, and the OP wants something slightly different (normal sorting order EXCEPT with the zero-rank elements ordered differently.) You need to read and understand the original question before you post generic answers. –  Li-aung Yip Apr 12 '12 at 18:52

try sorted_master_list = sorted(myarr, key=itemgetter('rank'), reverse=True)

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This would give an ordering of 4, 3, 2, 1, 0, 0, 0. The OP wanted 1, 2, 3, 4, 0, 0, 0. –  Li-aung Yip Apr 12 '12 at 18:54

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