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In Python, How can one subtract two non-unique, unordered lists? Say we have a = [0,1,2,1,0] and b = [0, 1, 1] I'd like to do something like c = a - b and have c be [2, 0] or [0, 2] order doesn't matter to me. This should throw an exception if a does not contain all elements in b.

Note this is different from sets! I'm not interested in finding the difference of the sets of elements in a and b, I'm interested in the difference between the actual collections of elements in a and b.

I can do this with a for loop, looking up the first element of b in a and then removing the element from b and from a, etc. But this doesn't appeal to me, it would be very inefficient (order of O(n^2) time) while it should be no problem to do this in O(n log n) time.

share|improve this question
    
Is this an implementation of a multiset, then...? –  Devin Jeanpierre Jan 15 '10 at 10:01
    
@Devin, yes a multiset is essentially what I want –  wich Jan 15 '10 at 10:15
1  
Also note that anything that operates directly out of unordered lists will be n^2 (len(a) * len(b)). To do it efficiently, you'll either need an intermediate data structure (eg. a dict counting occurances of each value) or to sort the lists first. If you're only dealing with small lists, it won't matter. –  Glenn Maynard Jan 15 '10 at 11:51

11 Answers 11

up vote 11 down vote accepted

Python 2.7 and 3.2 will add the collections.Counter class which is a dictionary that maps elements to the number of occurrences of the element. This can be used as a multiset.

According to the docs you should be able to do something like this (untested, since I do not have either version installed).

from collections import Counter
a = Counter(0,1,2,1)
b = Counter(0,1,1)

print a - b  # ignores items in b missing in a

# check every element in a is in b
# a[key] returns 0 if key not in a, instead of raising an exception
assert all(a[key] > b[key] for key in b)

Edit:

Since you are stuck with 2.5 you could try importing it and define your own version if that fails. That way you will be sure to get the latest version if it is available, and fall back to a working version if not. You will also benefit from speed improvements if if gets converted to a C implementation in the future.

i.e.

try:
   from collections import Counter
except ImportError:
    class Counter(dict):
       ...

You can find the current Python source here.

share|improve this answer
    
Unfortunately I'm stuck with 2.5 –  wich Jan 15 '10 at 12:01
2  
It should be a[key] >= b[key] instead of a[key] > b[key] –  J.F. Sebastian May 8 '10 at 16:19
2  
It should be Counter([0,1,1]) instead of Counter(0,1,1). –  J.F. Sebastian May 8 '10 at 16:24
    
Accepting this as the answer since it was the first to mention collections.Counter which is Python's implementation of multiset, although an ugly one in my opinion... –  wich Oct 9 '12 at 2:09

I know "for" is not what you want, but it's simple and clear, why bother?

for x in b:
  a.remove(x)
share|improve this answer
1  
Heh: yes, and if it really must look like a list comprehension: [a.remove(x) for x in b] :p –  jkp Jan 15 '10 at 10:14
9  
It will be three lines in total if you add c = list(a) before the loop and then remove items from c. In my opinion this is probably as clear and readable as it gets. –  Pär Wieslander Jan 15 '10 at 10:18
2  
But that's horribly inefficient for large lists, isn't it? –  vit Jan 15 '10 at 11:46
1  
@Kimvais: it does, but a will be [2, 0]. –  SilentGhost Jan 15 '10 at 12:05
2  
You may need to add if x in a before a.remove(x) though... –  R Thiede Jun 11 '12 at 15:12

I would do it in an easier way:

a_b = [e for e in a if not e in b ]

..as wich wrote, this is wrong - it works only if the items are unique in the lists. And if they are, it's better to use

a_b = list(set(a) - set(b))
share|improve this answer
    
This is an incorrect answer, you're treating the lists as sets, which they aren't they're collections. –  wich Jan 11 '11 at 10:13
    
"A set object is an unordered collection of distinct hashable objects." The key here is distinct. Don't worry this popped into my head as well but you have to remember that a set only has distinct elements. –  Nathan Adams Oct 6 '12 at 3:51

I'm not sure what the objection to a for loop is: there is no multiset in Python so you can't use a builtin container to help you out.

Seems to me anything on one line (if possible) will probably be helishly complex to understand. Go for readability and KISS. Python is not C :)

share|improve this answer

Python 2.7+ and 3.0 have collections.Counter (a.k.a. multiset). The documentation links to Recipe 576611: Counter class for Python 2.5:

from operator import itemgetter
from heapq import nlargest
from itertools import repeat, ifilter

class Counter(dict):
    '''Dict subclass for counting hashable objects.  Sometimes called a bag
    or multiset.  Elements are stored as dictionary keys and their counts
    are stored as dictionary values.

    >>> Counter('zyzygy')
    Counter({'y': 3, 'z': 2, 'g': 1})

    '''

    def __init__(self, iterable=None, **kwds):
        '''Create a new, empty Counter object.  And if given, count elements
        from an input iterable.  Or, initialize the count from another mapping
        of elements to their counts.

        >>> c = Counter()                           # a new, empty counter
        >>> c = Counter('gallahad')                 # a new counter from an iterable
        >>> c = Counter({'a': 4, 'b': 2})           # a new counter from a mapping
        >>> c = Counter(a=4, b=2)                   # a new counter from keyword args

        '''        
        self.update(iterable, **kwds)

    def __missing__(self, key):
        return 0

    def most_common(self, n=None):
        '''List the n most common elements and their counts from the most
        common to the least.  If n is None, then list all element counts.

        >>> Counter('abracadabra').most_common(3)
        [('a', 5), ('r', 2), ('b', 2)]

        '''        
        if n is None:
            return sorted(self.iteritems(), key=itemgetter(1), reverse=True)
        return nlargest(n, self.iteritems(), key=itemgetter(1))

    def elements(self):
        '''Iterator over elements repeating each as many times as its count.

        >>> c = Counter('ABCABC')
        >>> sorted(c.elements())
        ['A', 'A', 'B', 'B', 'C', 'C']

        If an element's count has been set to zero or is a negative number,
        elements() will ignore it.

        '''
        for elem, count in self.iteritems():
            for _ in repeat(None, count):
                yield elem

    # Override dict methods where the meaning changes for Counter objects.

    @classmethod
    def fromkeys(cls, iterable, v=None):
        raise NotImplementedError(
            'Counter.fromkeys() is undefined.  Use Counter(iterable) instead.')

    def update(self, iterable=None, **kwds):
        '''Like dict.update() but add counts instead of replacing them.

        Source can be an iterable, a dictionary, or another Counter instance.

        >>> c = Counter('which')
        >>> c.update('witch')           # add elements from another iterable
        >>> d = Counter('watch')
        >>> c.update(d)                 # add elements from another counter
        >>> c['h']                      # four 'h' in which, witch, and watch
        4

        '''        
        if iterable is not None:
            if hasattr(iterable, 'iteritems'):
                if self:
                    self_get = self.get
                    for elem, count in iterable.iteritems():
                        self[elem] = self_get(elem, 0) + count
                else:
                    dict.update(self, iterable) # fast path when counter is empty
            else:
                self_get = self.get
                for elem in iterable:
                    self[elem] = self_get(elem, 0) + 1
        if kwds:
            self.update(kwds)

    def copy(self):
        'Like dict.copy() but returns a Counter instance instead of a dict.'
        return Counter(self)

    def __delitem__(self, elem):
        'Like dict.__delitem__() but does not raise KeyError for missing values.'
        if elem in self:
            dict.__delitem__(self, elem)

    def __repr__(self):
        if not self:
            return '%s()' % self.__class__.__name__
        items = ', '.join(map('%r: %r'.__mod__, self.most_common()))
        return '%s({%s})' % (self.__class__.__name__, items)

    # Multiset-style mathematical operations discussed in:
    #       Knuth TAOCP Volume II section 4.6.3 exercise 19
    #       and at http://en.wikipedia.org/wiki/Multiset
    #
    # Outputs guaranteed to only include positive counts.
    #
    # To strip negative and zero counts, add-in an empty counter:
    #       c += Counter()

    def __add__(self, other):
        '''Add counts from two counters.

        >>> Counter('abbb') + Counter('bcc')
        Counter({'b': 4, 'c': 2, 'a': 1})


        '''
        if not isinstance(other, Counter):
            return NotImplemented
        result = Counter()
        for elem in set(self) | set(other):
            newcount = self[elem] + other[elem]
            if newcount > 0:
                result[elem] = newcount
        return result

    def __sub__(self, other):
        ''' Subtract count, but keep only results with positive counts.

        >>> Counter('abbbc') - Counter('bccd')
        Counter({'b': 2, 'a': 1})

        '''
        if not isinstance(other, Counter):
            return NotImplemented
        result = Counter()
        for elem in set(self) | set(other):
            newcount = self[elem] - other[elem]
            if newcount > 0:
                result[elem] = newcount
        return result

    def __or__(self, other):
        '''Union is the maximum of value in either of the input counters.

        >>> Counter('abbb') | Counter('bcc')
        Counter({'b': 3, 'c': 2, 'a': 1})

        '''
        if not isinstance(other, Counter):
            return NotImplemented
        _max = max
        result = Counter()
        for elem in set(self) | set(other):
            newcount = _max(self[elem], other[elem])
            if newcount > 0:
                result[elem] = newcount
        return result

    def __and__(self, other):
        ''' Intersection is the minimum of corresponding counts.

        >>> Counter('abbb') & Counter('bcc')
        Counter({'b': 1})

        '''
        if not isinstance(other, Counter):
            return NotImplemented
        _min = min
        result = Counter()
        if len(self) < len(other):
            self, other = other, self
        for elem in ifilter(self.__contains__, other):
            newcount = _min(self[elem], other[elem])
            if newcount > 0:
                result[elem] = newcount
        return result


if __name__ == '__main__':
    import doctest
    print doctest.testmod()

Then you can write

 a = Counter([0,1,2,1,0])
 b = Counter([0, 1, 1])
 c = a - b
 print list(c.elements())  # [0, 2]
share|improve this answer
    
I wonder how efficient this it, it hinges of course on the big oh complexity of the dictionary indexing happing inside the Counter class... –  wich Jan 19 '10 at 21:31
    
Your solution doesn't throw exception if b contains elements that are not in a –  J.F. Sebastian May 8 '10 at 16:07

to use list comprehension:

[i for i in a if not i in b or b.remove(i)]

would do the trick. It would change b in the process though. But I agree with jkp and Dyno Fu that using a for loop would be better.

Perhaps someone can create a better example that uses list comprehension but still is KISS?

share|improve this answer
    
to not destroy b, one can add c = list(b) and substitute b for c, but still not as nice as Dyno Fu's answer. –  BlackShift Jan 15 '10 at 10:22

To prove jkp's point that 'anything on one line will probably be helishly complex to understand', I created a one-liner. Please do not mod me down because I understand this is not a solution that you should actually use. It is just for demonstrational purposes.

The idea is to add the values in a one by one, as long as the total times you have added that value does is smaller than the total number of times this value is in a minus the number of times it is in b:

[ value for counter,value in enumerate(a) if a.count(value) >= b.count(value) + a[counter:].count(value) ]

The horror! But perhaps someone can improve on it? Is it even bug free?

Edit: Seeing Devin Jeanpierre comment about using a dictionary datastructure, I came up with this oneliner:

sum([ [value]*count for value,count in {value:a.count(value)-b.count(value) for value in set(a)}.items() ], [])

Better, but still unreadable.

share|improve this answer

You can try something like this:

class mylist(list):

    def __sub__(self, b):
        result = self[:]
        b = b[:]
        while b:
            try:
                result.remove(b.pop())
            except ValueError:
                raise Exception("Not all elements found during subtraction")
        return result


a = mylist([0, 1, 2, 1, 0] )
b = mylist([0, 1, 1])

>>> a - b
[2, 0]

You have to define what [1, 2, 3] - [5, 6] should output though, I guess you want [1, 2, 3] thats why I ignore the ValueError.

Edit: Now I see you wanted an exception if a does not contain all elements, added it instead of passing the ValueError.

share|improve this answer
    
Why are you subclassing list? –  Devin Jeanpierre Jan 15 '10 at 10:06
    
The OP states that "This should throw an exception if a does not contain all elements in b," so the ValueError shouldn't be silenced. –  Pär Wieslander Jan 15 '10 at 10:07
    
@Devin: because the title of this question is "Subtracting two lists in Python"? –  truppo Jan 15 '10 at 10:11
    
Apart from ignoring the exception (I actually want the excepton) that seems pretty nice, though I wonder about it's performance. remove is O(n) I suspect. Subclassing list itself is a nice way to keep stuff readible yet not clutter the code too much, hadn't even thought of that. –  wich Jan 15 '10 at 10:11
    
remove is O(n), making it potentially quadratic. It could be faster if you changed your data structure-- why are you using a list rather than a dict (mapping to element counts)? As for subclassing list, it doesn't particularly remove clutter. Really, how different is sub(a, b) and a - b? The difficulty is that you have to be using mylists everywhere instead of lists, which might be painful to track down. Otherwise, it's generally just bad style. In more complex cases (e.g. overriding __getitem__), behavior is wonky because code is shared in C, not Python, so a lot more work is involved. –  Devin Jeanpierre Jan 15 '10 at 10:31

I attempted to find a more elegant solution, but the best I could do was basically the same thing that Dyno Fu said:

from copy import copy

def subtract_lists(a, b):
    """
    >>> a = [0, 1, 2, 1, 0]
    >>> b = [0, 1, 1]
    >>> subtract_lists(a, b)
    [2, 0]

    >>> import random
    >>> size = 10000
    >>> a = [random.randrange(100) for _ in range(size)]
    >>> b = [random.randrange(100) for _ in range(size)]
    >>> c = subtract_lists(a, b)
    >>> assert all((x in a) for x in c)
    """
    a = copy(a)
    for x in b:
        if x in a:
            a.remove(x)
    return a
share|improve this answer
c = [i for i in b if i not in a]
share|improve this answer
1  
wrong, they are not sets –  wich Jul 14 '13 at 21:50
    
I see what you mean now. Indeed, my answer as currently written is not a correct answer to this question. –  AlcubierreDrive Jul 15 '13 at 9:07
list(set([x for x in a if x not in b]))
  • Leaves a and b untouched.
  • Is a unique set of "a - b".
  • Done.
share|improve this answer
    
As stated in the question, this is different from sets! the requirement is to not have the "unique set" of a - b but to have a - b –  wich Sep 10 '12 at 3:06

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