1

I have a list consisting of a repeating patterns i.e.

list=['a','1','first','b','2','second','c','3','third','4','d','fourth']`

I am not sure how long this list will be, it could be fairly long, but I want to create list of the repeating patters i.e. along with populated names

list_1=['a','1','first']
list_2=['b','2','second']
list_3=['c','3','third']
..... etc

What is the best, basic code (not requiring import of modules) that I can use to achieve this?

marked as duplicate by Ergec, abccd, McGrady, Jean-François Fabre python May 22 '17 at 4:53

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  • Suggest you don't use list as a variable name, as this hides python's list type. – AChampion May 22 '17 at 4:41
5

You can get the chunks using zip():

>>> lst = ['a','1','first','b','2','second','c','3','third','4','d','fourth']
>>> list(zip(*[iter(lst)]*3))
[('a', '1', 'first'), ('b', '2', 'second'), ('c', '3', 'third'), ('4', 'd', 'fourth')]

Using zip() avoids creating intermediate lists, which could be important if you have long lists.

zip(*[iter(lst)]*3) could be rewritten:

i = iter(lst)   # Create iterable from list
zip(i, i, i)    # zip the iterable 3 times, giving chunks of the original list in 3

But the former, while a little more cryptic, is more general.

If you need names for this lists then I would suggest using a dictionary:

>>> d = {'list_{}'.format(i): e for i, e in enumerate(zip(*[iter(lst)]*3), 1)}
>>> d
{'list_1': ('a', '1', 'first'),
 'list_2': ('b', '2', 'second'),
 'list_3': ('c', '3', 'third'),
 'list_4': ('4', 'd', 'fourth')}
>>> d['list_2']
('b', '2', 'second')
  • zip(*[iter(l)]*3) this is a nice incantation, but this answer would be greatly improved if you were to explain what's happening here as it's clear as regex to a novice. – Jon Kiparsky May 22 '17 at 4:49
  • This is also much better than the original naive zip solution in that it can be generalized to chunks of any desired size. – Jon Kiparsky May 22 '17 at 4:51
  • There is a subtle point here. To understand this more precisely, you need to know that [iter(lst)] * 3 returns a list of three references to THE SAME OBJECT. We then do a bit of a sleight of hand: we use the * operator to pass these objects to the zip function. The zip function forces evaluation of this single iterator, in groups of three, which happens one at a time from left to right, until the iterator runs out of items to iterate. – Jon Kiparsky May 22 '17 at 5:17
  • Strictly speaking, the call to list in list(zip(*[iter(lst)]*3)) is gratuitous, since zip already returns a list. – Jon Kiparsky May 22 '17 at 5:20
  • 2
    zip() does not return a list in Py3 – AChampion May 22 '17 at 5:22
3

Try this

chunks = [data[x:x+3] for x in xrange(0, len(data), 3)]

It will make sublists with 3 items

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