3

This question already has an answer here:

Please understand, I searched for this and it already has an answer. However I'm looking for a different way to get this result. This could potentially be flagged as a duplicate although I think there is a cleaner answer for this possibly using itertools (most likely groupby).

Say I have a list data. And I want 3 values at a time assume the list is number of valuesⁿ long as to rule out improper amount of values at the end.

data = [1, 2, 3, 4, 5, 6,...]

Here's how I'd like to iterate through the list (this code wouldn't work obviously):

for a, b, c in data:
    #perform operations
    pass

Now with the code above I'd like a, b, c to be 1, 2, 3 then 4, 5, 6 respectively in each iteration. I'm sure there's a cleaner approach out there than the one in the answer I linked to.

For the lazy people that don't want to click on a link to see the approach I'm referring to, here it is:

You can use slices if you want to iterate through a list by pairs of successive elements:

>>>myList = [4, 5, 7, 23, 45, 65, 3445, 234]
>>>for x,y in (myList[i:i+2] for i in range(0,len(myList),2)):
print(x,y)

4 5
7 23
45 65
3445 234

marked as duplicate by juanpa.arrivillaga python Jan 26 at 0:54

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • dang marked as duplicate anyway. Didn't find that one. Although I did find this answer the one I was trying to find. – Jab Jan 26 at 0:58
7

Here's a hacky solution with iter and zip:

i =  [1, 2, 3, 4, 5, 6]
d = iter(i)

for a, b, c in zip(*[d]*3):
    print(a, b, c)

Output:

1 2 3
4 5 6

Additionally if you want it to iterate over everything when your original list isn't divisible by three you can use zip_longest from itertools:

from itertools import zip_longest


i =  [1, 2, 3, 4, 5, 6, 7]
d = iter(i)

for a, b, c in zip_longest(*[d]*3):
  print(a, b, c)

Output:

1 2 3
4 5 6
7 None None
  • I like this thanks! Now I want to see something along the lines of performance differences between this and something like @jspcal's approach – Jab Jan 26 at 0:45
  • 2
    That's cool, having 3 copy of the same reference to the iterator in a list – Crivella Jan 26 at 0:46
  • Note this solution is precisely the itertools grouper recipe from the docs, also available in 3rd party more_itertools.grouper. – jpp Jan 26 at 0:47
  • 2
    @Jaba jspcal's approach should be faster since I'm building a list, unpacking, and passing things into zip. However iterating over a list is already really fast, and my assumption is that your performance bottleneck will be what you will do with a, b, and c instead of just the iteration. – Primusa Jan 26 at 0:49
  • 1
    @Jaba the variant above is the fastest out of the three. Times are (3.5, 7, and 9.18 seconds). Note that you have a bug in your code where you use an already used up iterable to test the second variant. The times I got were after I fixed this bug. – Primusa Jan 26 at 2:12
1

Perhaps use an iterator and increment the iterator when you want the next element in the chunk:

data = [1, 2, 3, 4, 5, 6]
it = iter(data)

for x in it:
    a = x
    b = next(it)
    c = next(it)
    print(a, b, c)
    # Do something with a, b, and c
  • Thank you, I do know this is a more traditional approach. unfortunately this is not what I'm looking for, I'd like to unpack it within the for declaration. – Jab Jan 26 at 0:42

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