7

Is there any list comprehension technique to get the below-desired result in a better way

a = ['hello', 'world', 'hello world', 'hello world how are', 'hello india']

final = set()
for i in a:
    for j in [x for x in a if x != i]:
        if i in j:
            final.add(i)
list(set(a)^final)
  • You could put a break inside the if - no point adding any item to final more than once. – jasonharper Nov 5 '19 at 13:43
  • This is a highly rated question, so I presume I’m the only dumb person here, but... Please find a way to indicate what it is you want with a question, rather than having us puzzle it out from your code. That could be as simple as just printing the desired output, since you seem to be happy with the result, just not with the method. – JL Peyret Nov 5 '19 at 17:14
4

Shorter but not necessarily better:

print([x for x in a if not any(x in j for j in a if x != j)])

With removing of duplicates in the final list (resembles behavior from question):

print(list(set(x for x in a if not any(x in j for j in a if x != j))))
| improve this answer | |
  • 1
    your code retains duplicate in output if present in the initial list while OP's solution doesn't do that – kuro Nov 5 '19 at 13:46
  • you can also use filter, which is basically the same: list(filter(not any(element in other and element != other for other in a), set(a))) – Artog Nov 5 '19 at 14:01
2

Another approach:

set([i for i in a if not any(set(i) < set(j) for j in a)])
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