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I need to check if a string contains a set of characters, and they need to appear the correct number of times.

string1 = "somestring"
string2 = "thestrings"
characters = "egimnorsst" # Note that there are two 's' characters here
does_string_contain(string1, characters) # True
does_string_contain(string2, characters) # False
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2 Answers 2

6

Just sort and compare them.

>>> sorted("egimnorsst") == sorted("somestring")
True
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  • 1
    @JuanTheron +1 comments are frowned upon... that's what the upvote button is for :) Mar 2, 2018 at 0:22
  • lol, ok whateva.... sorry then
    – Kickass
    Mar 2, 2018 at 0:24
2

One way is collections.Counter.

This method has a complexity of O(n) versus O(n log n) for sorted.

from collections import Counter

string1 = "somestring"
string2 = "egimnorsst"

Counter(string1) == Counter(string2)  # True

For large strings, this method is more efficient than sorted:

from collections import Counter
import random, string

def random_string(length):
    return ''.join(random.choice(string.ascii_letters) for m in range(length))

n = 50000
string1 = random_string(n)
string2 = ''.join(random.sample(string1, n))

%timeit Counter(string1) == Counter(string2)  # 11.3 ms
%timeit sorted(string1) == sorted(string2)    # 41.6 ms
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  • Would this run faster than sorting each string?
    – user72528
    Mar 2, 2018 at 2:23
  • For larger strings, yes.
    – jpp
    Mar 2, 2018 at 2:33

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