A tuple takes less memory space in Python:

>>> a = (1,2,3)
>>> a.__sizeof__()
48

whereas lists takes more memory space:

>>> b = [1,2,3]
>>> b.__sizeof__()
64

What happens internally on the Python memory management?

  • 1
    I am not sure on how this works internally, but the list object at least has more functions like for instance append which the tuple does not have. It therefore makes sense for the tuple as a simpler type of object to be smaller – Metareven Oct 10 '17 at 10:12
  • I think it also depend on machine to machine ....for me when i check a = (1,2,3) takes 72 and b = [1,2,3] takes 88. – amrit Oct 10 '17 at 10:18
  • 6
    Python tuples are immutable. Mutable objects have extra overhead to deal with runtime changes. – Lee Daniel Crocker Oct 10 '17 at 19:52
  • @Metareven the number of methods a type has does not impact the memory space the instances take. The method list and their code are handled by the object prototype, but instances store only data and internal variables. – jjmontes Oct 11 '17 at 16:59
up vote 126 down vote accepted

I assume you're using CPython and with 64bits (I got the same results on my CPython 2.7 64-bit). There could be differences in other Python implementations or if you have a 32bit Python.

Regardless of the implementation, lists are variable-sized while tuples are fixed-size.

So tuples can store the elements directly inside the struct, lists on the other hand need a layer of indirection (it stores a pointer to the elements). This layer of indirection is a pointer, on 64bit systems that's 64bit, hence 8bytes.

But there's another thing that lists do: They over-allocate. Otherwise list.append would be an O(n) operation always - to make it amortized O(1) (much faster!!!) it over-allocates. But now it has to keep track of the allocated size and the filled size (tuples only need to store one size, because allocated and filled size are always identical). That means each list has to store another "size" which on 64bit systems is a 64bit integer, again 8 bytes.

So lists need at least 16 bytes more memory than tuples. Why did I say "at least"? Because of the over-allocation. Over-allocation means it allocates more space than needed. However, the amount of over-allocation depends on "how" you create the list and the append/deletion history:

>>> l = [1,2,3]
>>> l.__sizeof__()
64
>>> l.append(4)  # triggers re-allocation (with over-allocation), because the original list is full
>>> l.__sizeof__()
96

>>> l = []
>>> l.__sizeof__()
40
>>> l.append(1)  # re-allocation with over-allocation
>>> l.__sizeof__()
72
>>> l.append(2)  # no re-alloc
>>> l.append(3)  # no re-alloc
>>> l.__sizeof__()
72
>>> l.append(4)  # still has room, so no over-allocation needed (yet)
>>> l.__sizeof__()
72

Images

I decided to create some images to accompany the explanation above. Maybe these are helpful

This is how it (schematically) is stored in memory in your example. I highlighted the differences with red (free-hand) cycles:

enter image description here

That's actually just an approximation because int objects are also Python objects and CPython even reuses small integers, so a probably more accurate representation (although not as readable) of the objects in memory would be:

enter image description here

Useful links:

Note that __sizeof__ doesn't really return the "correct" size! It only returns the size of the stored values. However when you use sys.getsizeof the result is different:

>>> import sys
>>> l = [1,2,3]
>>> t = (1, 2, 3)
>>> sys.getsizeof(l)
88
>>> sys.getsizeof(t)
72

There are 24 "extra" bytes. These are real, that's the garbage collector overhead that isn't accounted for in the __sizeof__ method. That's because you're generally not supposed to use magic methods directly - use the functions that know how to handle them, in this case: sys.getsizeof (which actually adds the GC overhead to the value returned from __sizeof__).

  • Re "So lists need at least 16 bytes more memory than tuples.", Wouldn't that be 8? One size for tuples and two sizes for lists means one extra size for lists. – ikegami Oct 10 '17 at 16:36
  • 1
    Yes, list has one extra "size" (8 byte) but also stores a pointer (8byte) to the "array of PyObject"s instead of storing them in the struct directly (what the tuple does). 8+8=16. – MSeifert Oct 10 '17 at 17:02
  • 2
    Another useful link about list memory allocation stackoverflow.com/questions/40018398/… – vishes_shell Oct 12 '17 at 5:42
  • @vishes_shell That's not really related to the question because the code in the question doesn't over-allocate at all. But yes it's useful in case you want to know more about the amount of over-allocation when using list() or a list comprehension. – MSeifert Oct 12 '17 at 14:16
  • 1
    @user3349993 Tuples are immutable, so you can't append to a tuple or remove an item from a tuple. – MSeifert Oct 15 '17 at 15:03

I'll take a deeper dive into the CPython codebase so we can see how the sizes are actually calculated. In your specific example, no over-allocations have been performed, so I won't touch on that.

I'm going to use 64-bit values here, as you are.


The size for lists is calculated from the following function, list_sizeof:

static PyObject *
list_sizeof(PyListObject *self)
{
    Py_ssize_t res;

    res = _PyObject_SIZE(Py_TYPE(self)) + self->allocated * sizeof(void*);
    return PyInt_FromSsize_t(res);
}

Here Py_TYPE(self) is a macro that grabs the ob_type of self (returning PyList_Type) while _PyObject_SIZE is another macro that grabs tp_basicsize from that type. tp_basicsize is calculated as sizeof(PyListObject) where PyListObject is the instance struct.

The PyListObject structure has three fields:

PyObject_VAR_HEAD     # 24 bytes 
PyObject **ob_item;   #  8 bytes
Py_ssize_t allocated; #  8 bytes

these have comments (which I trimmed) explaining what they are, follow the link above to read them. PyObject_VAR_HEAD expands into three 8 byte fields (ob_refcount, ob_type and ob_size) so a 24 byte contribution.

So for now res is:

sizeof(PyListObject) + self->allocated * sizeof(void*)

or:

40 + self->allocated * sizeof(void*)

If the list instance has elements that are allocated. the second part calculates their contribution. self->allocated, as it's name implies, holds the number of allocated elements.

Without any elements, the size of lists is calculated to be:

>>> [].__sizeof__()
40

i.e the size of the instance struct.


tuple objects don't define a tuple_sizeof function. Instead, they use object_sizeof to calculate their size:

static PyObject *
object_sizeof(PyObject *self, PyObject *args)
{
    Py_ssize_t res, isize;

    res = 0;
    isize = self->ob_type->tp_itemsize;
    if (isize > 0)
        res = Py_SIZE(self) * isize;
    res += self->ob_type->tp_basicsize;

    return PyInt_FromSsize_t(res);
}

This, as for lists, grabs the tp_basicsize and, if the object has a non-zero tp_itemsize (meaning it has variable-length instances), it multiplies the number of items in the tuple (which it gets via Py_SIZE) with tp_itemsize.

tp_basicsize again uses sizeof(PyTupleObject) where the PyTupleObject struct contains:

PyObject_VAR_HEAD       # 24 bytes 
PyObject *ob_item[1];   # 8  bytes

So, without any elements (that is, Py_SIZE returns 0) the size of empty tuples is equal to sizeof(PyTupleObject):

>>> ().__sizeof__()
24

huh? Well, here's an oddity which I haven't found an explanation for, the tp_basicsize of tuples is actually calculated as follows:

sizeof(PyTupleObject) - sizeof(PyObject *)

why an additional 8 bytes is removed from tp_basicsize is something I haven't been able to find out. (See MSeifert's comment for a possible explanation)


But, this is basically the difference in your specific example. lists also keep around a number of allocated elements which helps determine when to over-allocate again.

Now, when additional elements are added, lists do indeed perform this over-allocation in order to achieve O(1) appends. This results in greater sizes as MSeifert's covers nicely in his answer.

  • I believe the ob_item[1] is mostly a placeholder (so it makes sense it's subtracted from the basicsize). The tuple is allocated using PyObject_NewVar. I haven't figured out the details so that's just an educated guess... – MSeifert Oct 10 '17 at 12:35
  • @MSeifert Sorry for that, fixed :-). I really don't know, I remember finding it in the past at some point but I never giving it too much attention, maybe I'll just ask a question at some point in the future :-) – Jim Fasarakis Hilliard Oct 10 '17 at 12:40

MSeifert answer covers it broadly; to keep it simple you can think of:

tuple is immutable. Once it set, you can't change it. So you know in advance how much memory you need to allocate for that object.

list is mutable. You can add or remove items to or from it. It has to know the size of it (for internal impl.). It resizes as needed.

There are no free meals - these capabilities comes with a cost. Hence the overhead in memory for lists.

The size of the tuple is prefixed, meaning at tuple initialization the interpreter allocate enough space for the contained data, and that's the end of it, giving it's immutable (can't be modified), whereas a list is a mutable object hence implying dynamic allocation of memory, so to avoid allocating space each time you append or modify the list ( allocate enough space to contain the changed data and copy the data to it), it allocates additional space for future append, modifications, ... that pretty much sums it up.

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