1

If I have a list ts of tuples in python:

ts = [(702,703), (703,704), (803,805), (803,806), (901,903), (902,903)]

How do I obtain a list containing common elements between 2 or more such tuples?

Assume that both the tuples in ts and the the elements in tuples are already numerically sorted.

For this example, the intended output should be:

ts_output = [703, 803, 903]

Below is my working so far:

ts = [(702,703), (703,704), (803,805), (803,806), (901,903), (902,903)]
ts = set(ts)

t1 = set(w for w,x in ts for y,z in ts if w == y) # t1 should only contain 803
print("t1: ", t1)

t2 = set(y for w,x in ts for y,z in ts if x == y) # t2 should only contain 703
print("t2: ", t2)

t3 = set(x for w,x in ts for y,z in ts if x == z) # t3 should only contain 903
print("t3: ", t3)

And this is the corresponding output:

t1: {803, 901, 902, 702, 703}
t2: {703}
t3: {704, 805, 806, 903, 703}

From above, only t2 gave the intended output, but I'm not sure what happened to t1 and t3.

You may use this alternative input to test your code, and it should give the exact same output:

 ts = [(701,703), (702,703), (703,704), (803,805), (803,806), (901,903), (902,903), (903,904)]
  • 1
    I think you are not making it very clear. – Rahul Feb 13 '18 at 8:25
  • 1
    What if (703, 703) is a tuple in the list as well? What should the output for [(702, 701), (703, 703)] be? – Elmex80s Feb 13 '18 at 8:30
  • That's exactly I was thinking @Elmex80s – Rahul Feb 13 '18 at 8:31
  • 1
    @Elmex80s We assume that that will not happen. The data has been filtered for repeated numbers like (703, 703). Also, elements in tuples will be ordered from smallest to largest, so (702, 701) will be reordered to (701, 702). Hope this clarifies! – GnaNoelk Feb 13 '18 at 8:37
  • Any of the answers qualify to solve your problem? – Rahul Feb 13 '18 at 8:39
5
import collections

ts = [(702,703), (703,704), (803,805), (803,806), (901,903), (902,903)]
flat_list = [item for sublist in ts for item in sublist]
duplicates = [item for item, count in collections.Counter(flat_list).items() if count > 1]
print(duplicates)

Explanation:

Given your input, you first need to flat your list.

#1 Simple and pythonic
flat_list = [item
                for sublist in ts
                    for item in sublist]

#2 More efficient.
import itertools
flat_list = itertools.chain.from_iterable(ts)

In case of method #1 your flat_list will be list object in in case of method #2 it will be generator object. Both will behave same for iteration.

Now you can count the elements in your flat_list. If they are greater than 1 they are duplicates.

for item, count in collections.Counter(flat_list).items():
    if count > 1:
        print(item)

or you can use more pythonic list comprehension.

duplicates = [item
                 for item, count in collections.Counter(flat_list).items()
                     if count > 1]
  • import itertools; itertools.chain.from_iterable(ts) is faster than the list comprehension when merging any list or tuple of the list into single list or tuple. – Pradam Feb 13 '18 at 13:19
  • agreed. But this is more pythonic. Edited. – Rahul Feb 14 '18 at 4:02
5

You need to flatten your list of tuples. You can do this using itertools.chain

>>> from itertools import chain

>>> flat_list = list(chain(*ts))
>>> flat_list
>>> [702, 703, 703, 704, 803, 805, 803, 806, 901, 903, 902, 903]

Or you can also use itertools.chain.from_iterables to do the same like, However this doesn't require iterable unpacking

>>> flat_list = list(itertools.chain.from_iterable(ts))
>>> flat_list
>>> [702, 703, 703, 704, 803, 805, 803, 806, 901, 903, 902, 903]

After this step you can use Collections.Counter to count occurance of each element in flat list and filter once which occurs more than one.

>>> from collections import Counter
>>> c = Counter(flat_list)
>>> c
>>> Counter({803: 2, 903: 2, 703: 2, 704: 1, 805: 1, 806: 1, 901: 1, 902: 1, 702: 1}) 

Then finally filter c

>>> [k for k,v in c.items() if v>1]
>>> [803, 903, 703]
  • chain.from_iterable(ts) also works here . – RoadRunner Feb 13 '18 at 8:42
  • @RoadRunner updated! – Sohaib Farooqi Feb 13 '18 at 8:46
1
>>> from collections import Counter
>>> ts = [(702,703), (703,704), (803,805), (803,806), (901,903), (902,903)]
>>> c = Counter(el for t in ts for el in t)
>>> [k for k in c if c[k] >= 2]
[703, 803, 903]
1

Here's an answer that solves it by only passing through once instead of twice and builds result as it goes (not sure if its faster or slower in practice for super large ts)

>>> from collections import Counter
>>> from itertools import chain
>>> ts = [(702,703), (703,704), (803,805), (803,806), (901,903), (902,903)]
>>> def find_common(ts):
...   c = Counter()
...   for num in chain.from_iterable(ts):
...     c[num] += 1
...     if c[num] == 2:
...       yield num
... 
>>> list(find_common(ts))
[703, 803, 903]

And without Counter

>>> def find_common(ts):
...   seen, dupes = set(), set()
...   for num in chain.from_iterable(ts):
...     if num in seen and num not in dupes:
...       dupes.add(num)
...       yield num
...     seen.add(num)
>>> list(find_common(ts))
[703, 803, 903]

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