1

I need the element that appears only occur once. (python)

For example the result for

mylist = ['a', 'a', 'a', 'a', 'b', 'c']

would be

2
  • I think the result should be 3 for that example? – brunns Apr 18 at 17:55
  • Why 2? shouldn't that by 3? – Óscar López Apr 18 at 17:55
  • 1
    @brunns - the question isn't really clear. They want to know the count of element that only occur once -> b and c – Mark Meyer Apr 18 at 18:04
  • Yeah - I think @blhsing's answer gives them what they want. – brunns Apr 18 at 19:49
5

You can use collections.Counter to count the number of occurrences of each distinct item, and retain only those with a count of 1 with a generator expression:

from collections import Counter
sum(1 for c in Counter(mylist).values() if c == 1)

This returns: 2

  • 1
    golfing sum(c==1 for k, c in Counter(mylist).items()) – Jean-François Fabre Apr 18 at 18:01
  • 1
    I knew about that approach but it is less efficient because sum would then have to iterate through more numbers. Filtering first makes sum faster. See demo: jdoodle.com/embed/v0/19uT – blhsing Apr 18 at 18:12
  • 1
    golfing just faster ... to type. You can anonymize the key: sum(1 for c in Counter(mylist).values() if c == 1) – Jean-François Fabre Apr 18 at 18:48
  • Ah indeed I forgot that keys are not needed here. Updated as suggested. Thanks. – blhsing Apr 18 at 19:52
0

This situation looks like a pure Set structure. If I were you I would turn the array to set and check the size of it.

You can check examples how to do it here

  • That would output 3 for ['a', 'a', 'a', 'a', 'b', 'c']. OP wants to count the number of elements which only occur once, so b and c. – glhr Apr 18 at 17:56
0

You basically want to iterate through the list and check to see how many times each element occurs in the list. If it occurs more than once, you don't want it but if it occurs only once, you increase your counter by 1.

count = 0

for letter in mylist:
  if mylist.count(letter) == 1:
    count += 1

print (count)
  • 1
    You're going to count 'a' four times but it's going to work. I prefer the Counter approach, though. – Eric Darchis Apr 18 at 18:02
  • @EricDarchis How do you think the counter does it? If we're talking complexity-wise I think they're the same. If we're talking simplicity and readibility, I prefer this one. It's just simple. – Adam Zahran Apr 18 at 18:04
  • Please explain your answer. Do not give code-only answers. – StefanG Apr 18 at 18:05
  • 1
    @AdamZahran no, this is quadratic time, whereas a Counter based approach is linear time – juanpa.arrivillaga Apr 18 at 18:09
  • 1
    The Counter is a special dictionary. So you browse the array only once and increment the counters in the dict as you go. As @juanpa.arrivillaga states, you're browsing the array len(mylist)*len(mylist) times instead of len(mylist)+len(unique items). The drawback of the counter is that it uses more memory. But if that's of any matter, the n² complexity is going to be much worse anyway. – Eric Darchis Apr 18 at 18:15
-1

This should work for you:

len(set(mylist))

It does require your values to be hashable.

  • That would output 3 for ['a', 'a', 'a', 'a', 'b', 'c']. OP wants to count the number of elements which only occur once, so b and c. – glhr Apr 18 at 17:55
  • Ah, I see. I wouldn't describe that as unique elements, but I see what they are getting at. – brunns Apr 18 at 17:57
  • You mean set()? – brunns Apr 18 at 17:59

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