34
>>> '12345'.count('')
6

Why does this happen? If there are only 5 characters in that string, why is the count function returning one more?

Also, is there a more effective way of counting characters in a string?

  • 12
    Think fence posts and fence panels. Each panel has a character on it. Each post has no character on it. – Peter Wood Jun 19 '15 at 23:54
  • 32
    Simple failure to read the documentation. Not sure why so many upvotes. -1 – Lightness Races in Orbit Jun 20 '15 at 16:03
  • 4
    @LightnessRacesinOrbit: The documentation is off course not in sync with the implementation. As per the documentation Return the number of non-overlapping occurrences of substring sub in the range [start, end]., the result should had been 4. – Abhijit Jun 20 '15 at 19:56
  • 2
    @Abhijit Where do you see the difference between the implementation and the documentation? In my point of view, that sentence makes it clear, why the result is 6. Since "start" and "end" are inclusive the empty string infront (and behind) them counts too. – Tom Jun 20 '15 at 22:20
  • 2
    @Abhijit: start and end take default values (actually None, but logically equivalent to 0 and len('12345')). So there are 6 "occurrences" of the empty substring in the range [start, end], specifically [0:0], [1:1], ... [5:5]. If the range specified were [start, end), excluding one endpoint, then we wouldn't have [5:5], and if the range were (start, end) excluding both endpoints then we also wouldn't have [0:0], in which case 4 would be right. But if the definition excluded endpoints then 'abc'.count('abc') would be 0, which would be rather surprising ;-) – Steve Jessop Jun 21 '15 at 12:53
109

count returns how many times an object occurs in a list, so if you count occurrences of '' you get 6 because the empty string is at the beginning, end, and in between each letter.

Use the len function to find the length of a string.

  • I think using iterable Object is more appropriate instead of list! – Kasramvd Jun 21 '15 at 6:34
  • 2
    "how many times an object occurs in a list" is a vague notion: if I concatenate 100 times the empty list, do I get count(s,'') to be 100? Also, "occurs" may lead one to thinks that s[i] is object for some i -- confusing membership and sub-list. Perhaps it would be less ambiguous to say that count(s,z) returns the number of indices 0<=i<=len(s) such that s[i:] starts with z. – chi Jun 21 '15 at 12:44
  • 1
    The op ask about a string not a list. So from the documentation str.count "Return the number of non-overlapping occurrences of substring sub" – Nicolas Labrot Jun 21 '15 at 17:07
  • 3
    why is there one '' in between letters instead of five or none at all? – Tulains Córdova Jun 21 '15 at 23:01
  • I don't think it answers the question: list('a').count('') == 0, but 'a'.count('') == 2. It looks like an artifact of the current implementation because 'a'.split('') fails with ValueError – jfs Jun 22 '15 at 12:38
28

That is because there are six different substrings that are the empty string: Before the 1, between the numbers, and after the 5.

If you want to count characters use len instead:

>>> len("12345")
5
  • 1
    It explains nothing. The answer could have been zero because there are zero items such as s[i] == ''. – jfs Jun 22 '15 at 12:45
  • @J.F.Sebastian Items such that s[i] is the empty string and empty substrings are different notions altogether. A substring can be chosen such that it has zero characters, and this can be done in six distinct ways (from index 0 length 0, from index 1 length 0, etc) – Andrey Akhmetov Jun 22 '15 at 13:34
  • yes. My mistake (s[i] implies len(sub) == 1 and therefore can't be used for an empty string). But it still doesn't explain the result. It is clear that the implementation counts s[i:i+len(sub)] non-overlapping slices in s that are equal to sub. It doesn't explain why s[end:end+len(sub)] is included: usually s[start:end] slice does not include end position. – jfs Jun 22 '15 at 13:55
  • @J.F.Sebastian If len(sub) is equal to zero, then the slice is s[i:i], which is empty (since there are no elements such that their index is >= i but also < i. – Andrey Akhmetov Jun 22 '15 at 13:57
  • And how does it explain that i == end is allowed? I understand that s[end:end] by itself is valid but the str.count() docs explicitly say that start,end should be interpreted as in slice notation i.e. i<end and therefore s[end:end] should not be included in the count. – jfs Jun 22 '15 at 14:00
25

How many pieces do you get if you cut a string five times?

---|---|---|---|---|---     -> 6 pieces

The same thing is happening here. It counts the empty string after the 5 also.

len('12345') is what you should use.

  • it would be the answer if 'a'.split('') were working. – jfs Jun 22 '15 at 12:43
6

The most common way is to use len('12345'). It returns the number of characters in a given string - in this case 5.

1

Count and Len are two very different things. Len simply prints the length of the string (hence the name 'Len'), while Count iterates through the string or list and gives you the number of times an object occurs, which counts the beginning and end of the string as well as in between each letter.

1

It's the same reason why it makes sense for ''.count('') to return 1, not 0.

  • 1
    why 1 instead of 0, why not 100. I pretty sure 0*100 == 0 – jfs Jun 22 '15 at 12:40

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