6

If looping over a list/tuple/sequence, you can use len(...) to infer how many times the loop was executed. But when looping over an iterator, you cannot.

[Update for clarity: I am thinking about single-use finite iterators where I want to do computation on the items AND count them at the same time.]

I currently use an explicit counter variable as in the following example:

def some_function(some_argument):
    pass


some_iterator = iter("Hello world")

count = 0
for value in some_iterator:
    some_function(value)
    count += 1

print("Looped %i times" % count)

Given there are 11 characters in "Hello world", the expected output here is:

Looped 11 times

I have also considered this shorter alternative using enumerate(...) but I do not find this as clear:

def some_function(some_argument):
    pass


some_iterator = iter("Hello world")

count = 0  # Added for special case, see note below
for count, value in enumerate(some_iterator, start=1):
    some_function(value)

print("Looped %i times" % count)

[Update for reference: @mata spotted that as originally written this second example would fail if the iterator is empty. Inserting count = 0 solves this, or we can use the for ... else ... structure to handle this corner case.]

It does not use the index from enumerate(...) within the loop, but rather setting the variable to the loop count is almost a side effect. To me this is quite unclear, so I prefer the first version with the explicit increment.

Is there an accepted Pythonic way to do this (ideally for both Python 3 and Python 2 code)?

3
  • Yes, and this solution is enumerate. Why do you consider it not as "clear"? I don't know if it is a matter of getting used to it, but enumerate seems readable and concise to me... Feb 13 '17 at 15:10
  • 3
    It depends... I'd say that the second form is more pythonic, but it also isn't covering the exact same case, because if the iterator has no elements count after the loop will not be defined and you get a NameError, so you'd have use a for ... else or initialize the counter before the loop.
    – mata
    Feb 13 '17 at 15:20
  • Good point @mata, if the iterator was empty the second example as written will fail.
    – peterjc
    Feb 13 '17 at 15:25
6

You can combine the convenience of enumerate with the counter being defined if the loop did not run by adding one line:

count = 0  # Counter is set in any case.
for count, item in enumerate(data, start=1):
   doSomethingTo(item)
print "Did it %d times" % count

If all you need it is to count the number of items in an iterator, without doing anything with the items, and without making a list of them, you can do it simply:

count = sum(1 for ignored_item in data)  # count a 1 for each item
3
  • 1
    As written this has an off by one error (by default enumerate uses 0 to count - 1), which is why I had the verbose extra argument to start from one.
    – peterjc
    Feb 13 '17 at 16:58
  • I'm familiar with the list compression trick with sum but in this case I need to do something with the items (represented in the example with some_function).
    – peterjc
    Feb 13 '17 at 16:59
  • 1
    @peterjc: Good catch, thanks! I've updated my answer with start=1.
    – 9000
    Feb 13 '17 at 17:01
2

You can do all sorts of stuff to count the number of items in a generator, but in any case, the original generator will be wasted. Exhausted, to be precise.

length = sum(1 for x in gen)
length = max(c for c, _ in enumerate(gen, 1))
length = len(list(gen))
  1. The first way shown here is really nice as it handles the case with an empty generator well and returns zero as expected.
  2. The second code will raise an exception when given an exhausted generator, which may be useful when it should never be exhausted, but it actually is, so the execution will stop and you'll be able to investigate what went wrong.
  3. This code will probably waste a lot of memory if the data provided by gen is too big, but it's just easy to understand, so that nobody will have to think hard banging their head against a wall trying to understand what this means.

All of these will work only for finite generators.

If you want to calculate the 'length' of the iterator while looping over it, you can do this:

length = 0
for length, data in enumerate(gen, 1):
    # do stuff

Now, length will be equal to the number of elements the generator has produced. Notice that you don't have to increment length manually as both length and data are still available and valid after the loop execution.


EDIT: if you want to execute some function for each value and disregard its return value (you can handle it by using a list as one of the function's arguments), you can try this:

length = sum(1 | bool(function(x)) for x in gen)

This will calculate the length while applying function to each element of the generator. Still, using enumerate looks like a better idea.

3
  • None of your examples allow for running code using the items in the generator (which could be something expensive to run, or single use), but you end with endorsing the enumerate approach.
    – peterjc
    Feb 13 '17 at 17:00
  • @peterjc, I've added an example of how you can incorporate function application into one of my initial solutions.
    – ForceBru
    Feb 13 '17 at 17:14
  • That's an inventive generator expression approach combining counting with calling the function on each item, but as a matter of taste I find it too complicated. The nature of my question means judging alternatives was always going to be subjective.
    – peterjc
    Feb 13 '17 at 17:29
1

There is no way to get the number of items in an iterator. Think of this case

def gen():
   a = 1
   while True:
       yield a
       a += 1
f = gen()

for value in f:
    # do something

What is the size of this iterator? An iterator ends when, and if, it raises a StopIteration. On the contrary, when you iterate over a sequence, the sequence already exists, so its length can be known.

Both of the approaches you used are fine. best depends on your taste. Another option would be to use

from itertools import count
for item, counter in zip(iterator, count()):
    # do stuff

However, I think in most cases your first, traditional approach would be clearer.

3
  • This is a good example for explaining why I am asking this question - I glossed over this in the introduction just noting you can't use len(...) on an iterator. But your answer does not answer my question, which is how best to count the number of items in the iterator assuming you are using it in a for loop.
    – peterjc
    Feb 13 '17 at 15:28
  • @peterjc: ok, just pointing out that it's not possible. edited the question
    – blue_note
    Feb 13 '17 at 15:36
  • Thanks - that's clearer now. I agree the "best" approach is going to be a matter of taste.
    – peterjc
    Feb 13 '17 at 17:11
0

What is wrong with this?

len(list(some_iterator))
1
  • 3
    It does work but reads all elements of some_iterator into memory. Feb 13 '17 at 15:53

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