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I have a list like p = [[[[[[[[1, 2, 3]]]]]]]], I want to get the count of the items in the list including empty lists, so for this list I should get 10. I am trying to enumerate the list like -

for idx, item in enumerate(p):
    count = count + idx

but I am not able to get the empty lists there. Please advice.

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2  
There are no empty lists in there. –  jamylak Mar 31 '12 at 12:04
    
Could you explain how you get 10 for that list? –  Simeon Visser Mar 31 '12 at 12:05
    
He counts the number of items in each list and adds them together –  jamylak Mar 31 '12 at 12:07
    
jamylak - yes you are right, I want to count the depth of these lists, so if you see, I have 7 nested lists and 1,2,and 3, so my depth should be 10 –  Varun Mar 31 '12 at 12:07
    
ah yes now i see –  jamylak Mar 31 '12 at 12:08

3 Answers 3

up vote 6 down vote accepted

Shorter version of code below:

>>> def recur_len(l):
        return sum(1 + recur_len(item) if isinstance(item,list) else 1 for item in l)

>>> recur_len([[[[[[[[1, 2, 3]]]]]]]])
10

More detailed code

>>> def recur_len(l):
        count = 0
        for item in l:
            if isinstance(item,list):
                count += 1 + recur_len(item)
            else:
                count += 1
        return count

>>> recur_len([[[[[[[[1, 2, 3]]]]]]]])
10
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+1 I'll leave my answer up, but this is what was actually wanted by the OP. The question wording wasn't very clear and the example ambiguous. –  Lattyware Mar 31 '12 at 12:27
    
Yeah i agree i didn't understand the whole 'empty list thing' –  jamylak Mar 31 '12 at 12:29
    
Thanks, will be more descriptive next time. Now it is time to sit and learn how this code it working, thanks a lot –  Varun Mar 31 '12 at 12:37
    
alrighty, no problem... –  jamylak Mar 31 '12 at 12:39

If you only want to count lists (or subclasses of list) and nothing else, except the content of the final list not just containing another list:

def len_counting_containers(inlist):
    count = 0
    current = inlist
    while len(current) == 1 and isinstance(current[0], list):
        count += 1
        current = current[0]
    return count + len(current)

len_counting_containers([[[[[[[[1, 2, 3]]]]]]]])

Which gives us:

10

Note that this is a pretty fragile operation (as with any case you use isinstance() in python) - so you want to be sure that your incoming data is always structured as you expect. If your data is coming from a source you control, I would recommend looking at how you produce the data and seeing if you can give it in a nicer form - e.g: (7, [1,2,3]).

You could also implement this recursively:

def len_counting_containers(current):
    return len_counting_containers(current[0])+1 if len(current) == 1 and isinstance(current[0], list) else len(current)

len_counting_containers([[[[[[[[1, 2, 3]]]]]]]])

This gives the same result in less code, but if you are working with an insanely large lists this could hit recursion limits.

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Thanks, I am a newbee here so trying to grasp as much as I can, what if I change list to myList = ([1, [1, 2, [3, 4]]]), I am getting only 2 for this operation but I have 7 items there, please explain, I will try to code myself –  Varun Mar 31 '12 at 12:19
    
Ah, you said including 'empty lists', so I presumed you meant lists containing only one item. I think jamylak's answer does what you want. –  Lattyware Mar 31 '12 at 12:22
def depth(a):
    return 1 + depth(a[0]) if type(a) is list else 0

Demo:

a = 'x'
for n in range(10):
    a = [a]
    print a, depth(a)


## ['x'] 1
## [['x']] 2
## [[['x']]] 3
## [[[['x']]]] 4
## [[[[['x']]]]] 5
## [[[[[['x']]]]]] 6
## [[[[[[['x']]]]]]] 7
## [[[[[[[['x']]]]]]]] 8
## [[[[[[[[['x']]]]]]]]] 9
## [[[[[[[[[['x']]]]]]]]]] 10
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code def deep_count(p): sum = 0 for e in p: sum = sum + 1 if is_list(e): sum = sum + deep_count(e) return sum code –  Varun Apr 4 '12 at 10:39

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