35

In Python, trying to do the most basic append function to a list with a loop: Not sure what i am missing here:

a=[]
for i in range(5):    
    a=a.append(i)
a

returns: 'NoneType' object has no attribute 'append'

  • 1
    Not a=append(i). Just a.append(i). – khelwood Jan 3 '17 at 21:40
  • And another dupe (possibly less canonical, but more helpful for this particular question: stackoverflow.com/q/31734042/748858) – mgilson Jan 3 '17 at 21:44
  • Depending on what you exactly want to do, you can also create the same list with list comprehension. a = [x for x in range(5)] – Nebulastic Aug 22 '19 at 8:37
64

The list.append function does not return any value(but None), it just adds the value to the list you are using to call that method.

In the first loop round you will assign None (because the no-return of append) to a, then in the second round it will try to call a.append, as a is None it will raise the Exception you are seeing

You just need to change it to:

a=[]
for i in range(5):    
    a.append(i)
print(a)
# [0, 1, 2, 3, 4]

list.append is what is called a mutating or destructive method, i.e. it will destroy or mutate the previous object into a new one(or a new state).

If you would like to create a new list based in one list without destroying or mutating it you can do something like this:

a=['a', 'b', 'c']
result = a + ['d']

print result
# ['a', 'b', 'c', 'd']

print a
# ['a', 'b', 'c']

As a corollary only, you can mimic the append method by doing the following:

a=['a', 'b', 'c']
a = a + ['d']

print a
# ['a', 'b', 'c', 'd']
  • 2
    It does return a value. It returns None. – juanpa.arrivillaga Jan 3 '17 at 21:49
  • a.append([i for i in range(5)]) – a zEnItH Jun 3 '20 at 4:35
12

You don't need the assignment, list.append(x) will always append x to a and therefore there's no need te redefine a.

a = []
for i in range(5):    
    a.append(i)
print(a)

is all you need. This works because lists are mutable.

Also see the docs on data structures.

6

No need to re-assign.

a=[]
for i in range(5):    
    a.append(i)
a

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