This question already has an answer here:

One block of code works but the other does not. Which would make sense except the second block is the same as the first only with an operation written in shorthand. They are practically the same operation.

l = ['table']
i = []

Version 1

for n in l:
    i += n
print(i)

Output: ['t', 'a', 'b', 'l', 'e']

Version 2

for n in l:
    i = i + n
print(i)

Output:

TypeError: can only concatenate list (not "str") to list


What is causing this strange error?

marked as duplicate by Aran-Fey python Oct 11 at 14:05

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  • 16
    No, not the same for lists. += extends a list. + concatenates two lists into a new list. – khelwood Oct 10 at 19:58
  • 10
    Ideally, if you're using this idea in code, it's probably safer to use the append() and extend() methods for adding elements and concatenating lists, respectively, to avoid ambiguity like this. – Green Cloak Guy Oct 10 at 20:01
  • 2
    @GreenMatt: "It's not an error.": A TypeError is, in fact, an error. – wchargin Oct 10 at 23:11
up vote 62 down vote accepted

They don't have to be the same.

Using the + operator calls the method __add__ while using the += operator calls __iadd__. It is completely up to the object in question what happens when one of these methods is called.

If you use x += y but x does not provide an __iadd__ method (or the method returns NotImplemented), __add__ is used as a fallback, meaning that x = x + y happens.

In the case of lists, using l += iterable actually extends the list l with the elements of iterable. In your case, every character from the string (which is an iterable) is appended during the extend operation.

Demo 1: using __iadd__

>>> l = []
>>> l += 'table'
>>> l
['t', 'a', 'b', 'l', 'e']

Demo 2: using extend does the same

>>> l = []
>>> l.extend('table')
>>> l
['t', 'a', 'b', 'l', 'e']

Demo 3: adding a list and a string raises a TypeError.

>>> l = []
>>> l = l + 'table'
[...]
TypeError: can only concatenate list (not "str") to list

Not using += gives you the TypeError here because only __iadd__ implements the extending behavior.

Demo 4: common pitfall: += does not build a new list (note the identical ids)

>>> l = []
>>> id(l)
140359172117512
>>> l += [1, 2, 3]
>>> id(l)
140359172117512

... but the l = l + iterable syntax does.

>>> l = []
>>> id(l)
140359172142472
>>> l = l + [1, 2, 3]
>>> id(l)
140359172167560

In some cases, this can produce subtle bugs, because += mutates the original list, while
l = l + iterable builds a new list and reassigns the name l.

BONUS

Ned Batchelder's challenge to find this in the docs

  • @JackAidley Which part exactly? I don’t see anything in this answer which I would deem controversial. It follows the principle of least surprise and yet manages to offer a way that’s potentially a lot more efficient. (The design seems fairly obviously inspired by the corresponding operators in C++). – Konrad Rudolph Oct 11 at 10:10
  • 4
    @JackAidley You’re making a strong claim and thus you’d need to present evidence for it. I don’t find it at all obvious that a compound assignment should behave the same way as an ordinary assignment (and this isn’t the case in any language I know, where this difference can be observed — i.e. not Java). In fact, intuitively the opposite should be true because compound assignment (both syntactically and semantically) is a mutating operation, whereas addition (say) is generally non-mutating, and assignment itself replaces rather than mutates an object. – Konrad Rudolph Oct 11 at 10:44

No.

7.2.1. Augmented assignment statements:

An augmented assignment expression like x += 1 can be rewritten as x = x + 1 to achieve a similar, but not exactly equal effect. In the augmented version, x is only evaluated once. Also, when possible, the actual operation is performed in-place, meaning that rather than creating a new object and assigning that to the target, the old object is modified instead.

If in the second case, you wrap a list around n to avoid errors:

for n in l:
    i = i + [n]
print(i)

you get

['table']

So they are different operations.

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