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In Python you can use a.intersection(b) to find the items common to both sets.

Is there a way to do the disjoint opposite version of this? Items that are not common to both a and b; the unique items in a unioned with the unique items in b?

0

5 Answers 5

158

You are looking for the symmetric difference; all elements that appear only in set a or in set b, but not both:

a.symmetric_difference(b)

From the set.symmetric_difference() method documentation:

Return a new set with elements in either the set or other but not both.

You can use the ^ operator too, if both a and b are sets:

a ^ b

while set.symmetric_difference() takes any iterable for the other argument.

The output is the equivalent of (a | b) - (a & b), the union of both sets minus the intersection of both sets.

2
  • Isn't ^ normaly XOR operator? Apr 29, 2015 at 15:31
  • 1
    @user4847061: it is, but sets have overloaded several such operators. | and & are normally bitwise OR and bitwise AND, but on sets they give you the union and the intersection. The comparison operators <, <=, > and >= have been overloaded too.
    – Martijn Pieters
    Apr 29, 2015 at 15:34
4
a={1,2,4,5,6}
b={5,6,4,9}
c=(a^b)&b
print(c) # you got {9}
3

The best way is a list comprehension.

a = [ 1,2,3,4]
b = [ 8,7,9,2,1]
c = [ element for element in a if element not in b] 
d = [ element for element in b if element not in a] 
print(c) 
# output is [ 3,4]
print(d) 
# output is  [8,7,9]

You can join both lists

2
  • 2
    The performance on a list comprehension, when compared to a set for the above operations, is MUCH slower. It's okay for small lists, but for large operations, it can take hours and days.
    – Joe B
    Nov 16, 2020 at 20:34
  • Thanks for pointing this out i didn't knew about it as my lists are not usually long ones.
    – Apeasant
    Nov 30, 2021 at 10:00
0

Try this code for (set(a) - intersection(a&b))

a = [1,2,3,4,5,6]
b = [2,3]

for i in b:
   if i in a:
      a.remove(i)

print(a)

the output is [1,4,5,6] I hope, it will work

5
  • It's usually bad to mutate lists you are iterating over (in this case, there is no real consequence, unless I only care about returning a new list and not modifying a). Also check = i in a is redundant since you can always if i in a:
    – cowbert
    Mar 14, 2018 at 20:26
  • @cowbert thanks for your advise. I have fixed it. I will learn more about that. Mar 16, 2018 at 23:11
  • You can try with this one-liner solution print(sorted(set(a)-set(b)))
    – ravibeli
    Mar 13, 2020 at 9:20
  • I believer that is called the relative complement or difference of two sets.
    – ingyhere
    May 5, 2020 at 16:42
  • using numpy this case become easier np.setdiff1d(a, b) May 7, 2020 at 15:57
0

e, f are two list you want to check disjoint

a = [1,2,3,4]
b = [8,7,9,2,1]

c = []
def loop_to_check(e,f):
    for i in range(len(e)):
        if e[i] not in f:
            c.append(e[i])


loop_to_check(a,b)
loop_to_check(b,a)
print(c)

## output is [3,4,8,7,9]

This loops around to list and returns the disjoint list

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