13

First of all, I'm new to programming and python, I've looked here but can't find a solution, if this is a stupid question though please forgive me!

I have two lists and I'm trying to determine how many times items in the second list appears in the first list.

I have the following solution:

    list1 = ['black','red','yellow']
    list2 = ['the','big','black','dog']
    list3 = ['the','black','black','dog']
    p = set(list1)&set(list2)
    print(len(p))

It works fine apart from when the second list contains duplicates.

i.e. list1 and list2 above returns 1, but so does list1 and list3, when ideally that should return 2

Can anyone suggest a solution to this? Any help would be appreciated!

Thanks,

Adam

4
  • 3
    I can't understand what you really want to count, could you clarify your question?
    – Nicolas
    Commented Nov 10, 2012 at 16:42
  • 1
    You say list1 and list2 return 1, but they will return 0 as there are no elements that are equal. Check your example. Commented Nov 10, 2012 at 16:49
  • 1
    Your examples make no sense, list1 has nothing in common with either of the other lists.
    – poke
    Commented Nov 10, 2012 at 16:53
  • 1
    Yes, i just spotted the error in the example, rookie mistake :) Commented Nov 10, 2012 at 18:42

4 Answers 4

11

You're seeing this problem because of you're using sets for your collection type. Sets have two characteristics: they're unordered (which doesn't matter here), and their elements are unique. So you're losing the duplicates in the lists when you convert them to sets, before you even find their intersection:

>>> p = ['1', '2', '3', '3', '3', '3', '3']
>>> set(p)
set(['1', '2', '3'])

There are several ways you can do what you're looking to do here, but you'll want to start by looking at the list count method. I would do something like this:

>>> list1 = ['a', 'b', 'c']
>>> list2 = ['a', 'b', 'c', 'c', 'c']
>>> results = {}
>>> for i in list1:
        results[i] = list2.count(i) 
>>> results
{'a': 1, 'c': 3, 'b': 1}

This approach creates a dictionary (results), and for each element in list1, creates a key in results, counts the times it occurs in list2, and assigns that to the key's value.

Edit: As Lattyware points out, that approach solves a slightly different question than the one you asked. A really fundamental solution would look like this

>>> words = ['red', 'blue', 'yellow', 'black']
>>> list1 = ['the', 'black', 'dog']
>>> list2 = ['the', 'blue', 'blue', 'dog']
>>> results1 = 0
>>> results2 = 0
>>> for w in words:
        results1 += list1.count(w)
        results2 += list2.count(w)

>>> results1
1
>>> results2
2

This works in a similar way to my first suggestion: it iterates through each word in your main list (here I use words), adds the number of times it appears in list1 to the counter results1, and list2 to results2.

If you need more information than just the number of duplicates, you'll want to use a dictionary or, even better, the specialized Counter type in the collections modules. Counter is built to make everything I did in the examples above easy.

>>> from collections import Counter
>>> results3 = Counter()
>>> for w in words:
        results3[w] = list2.count(w)

>>> results3
Counter({'blue': 2, 'black': 0, 'yellow': 0, 'red': 0})
>>> sum(results3.values())
2
2
  • 1
    It might be more appropriate to produce a collections.Counter object here for results, which could then be iterated over with results.elements(), nicely to provide the equivalent of p in the question, or summed with sum(results) as an equivalent to len(p). Commented Nov 10, 2012 at 17:08
  • Yes, now that I've finished my coffee I see that I slightly misread the question. I'll amend it.
    – toxotes
    Commented Nov 10, 2012 at 17:34
9

Shouldn't list 1 and list 2 return 0? Or did you mean

list1 = ['black', 'red', 'yellow']

What you want, I think, is

print(len([w for w in list2 if w in list1]))

The trouble with using sets is that a set have no duplicates. In fact, the usual reason for using a set is to eliminate duplicates. That's just what you don't want here, of course.

1
  • 1
    You should make a set from list1 before the list comprehension, as membership tests on a list are very slow. I would also argue the statement 'the usual reason for using a set is to eliminate duplicates' is bad phrasing - it's a use, but the usual reason for a set is it's the right data structure for the job. Commented Nov 10, 2012 at 16:51
3

I know this is an old question, but if anyone was wondering how to get matches or the length of the matches from one or more lists. you can do this as well.

a = [1,2,3]
b = [2,3,4]
c = [2,4,5]

To get matches in two lists, say a and b will be

d = [value for value in a if value in b] # 2,3 

For the three lists, will be

d = [value for value in a if value in b and value in c] # 2
len(d) # to get the number of matches

also, if you need to handle duplicates. it will be a matter of converting the list to a set beforehand e.g

a  = set(a) # and so on
0

If you mean you'd like to count the frequency of elements of list1 in list2, maybe this solution can work for you:

list1 = ['black', 'red', 'yellow']
list2 = ['the', 'big', 'black', 'dog']
list3 = ['the', 'black', 'black', 'dog']

first of all we can count the frequency of elements in list2 and construct a dict, and then we can construct a subdict from the dict according to the list1,and to get the total frequency you may count the values of sub_dct:

# count the frequency of elements of list1 in list2
def cntFrequency(lst1,lst2):
    dct=dict(Counter(lst2))
    sub_dct={k:dct.get(k,0) for k in lst1}
    return sub_dct

and the result is like:

from collections import Counter

cnt_dct=cntFrequency(list1,list2)
print cnt_dct
print sum(cnt_dct.values())

# Output
{'black': 1, 'yellow': 0, 'red': 0}
1

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