What is the easiest (most pythonic way) to check, if the beginning of the list are exactly the elements of another list? Consider the following examples:

li = [1,4,5,3,2,8]

#Should return true
startsWithSublist(li, [1,4,5])

#Should return false
startsWithSublist(list2, [1,4,3])

#Should also return false, although it is contained in the list
startsWithSublist(list2, [4,5,3])

Sure I could iterate over the lists, but I guess there is an easier way. Both list will never contain the same elements twice, and the second list will always be shorter or equal long to the first list. Length of the list to match is variable.

How to do this in Python?

up vote 13 down vote accepted

Use list slicing:

>>> li = [1,4,5,3,2,8]
>>> sublist = [1,4,5]
>>> li[:len(sublist)] == sublist
True

You can do it using all without slicing and creating another list:

def startsWithSublist(l,sub):
    return len(sub) <= l and all(l[i] == ele  for i,ele  in enumerate(sub))

It will short circuit if you find non-matching elements or return True if all elements are the same, you can also use itertools.izip :

from itertools import izip
def startsWithSublist(l,sub):
    return len(sub) <= l and  all(a==b  for a,b in izip(l,sub))
  • 1
    Note that your index-based approach will throw if the sublist is longer than the sequence and matches up to the length, e.g. startsWithSublist([1,2,3],[1,2,3,4]), and your second will return True in that case (even though it probably shouldn't). (And yes, I know the OP ruled that case out, but still, it's a disadvantage slicing doesn't have.) – DSM Aug 21 '15 at 21:14
  • @DSM, added len(sub) <= l to handle that case. – Padraic Cunningham Aug 21 '15 at 21:16
  • Thank you very much for your response. I like the simplicity of the above answer, but also see the advantages of your solution. However, memory utilization and performance are not important in this case, as the lists are rather small (<= 5 entries), and I prefer the simple solution. – waza-ari Aug 21 '15 at 21:23
  • 1
    @waza-ari, yep, the slicing is the simplest approach, if you had large data this would be a more memory efficient approach. – Padraic Cunningham Aug 21 '15 at 21:24
  • Is that supposed to be len(sub) <= len(l)? – Brian McCutchon Nov 12 at 23:12

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