I understand that they are both essentially the same thing, but in terms of style, which is the better (more Pythonic) one to use to create an empty list or dict?
Answers:
Thank you for visiting the Q&A section on Magenaut. Please note that all the answers may not help you solve the issue immediately. So please treat them as advisements. If you found the post helpful (or not), leave a comment & I’ll get back to you as soon as possible.
Method 1
In terms of speed, it’s no competition for empty lists/dicts:
>>> from timeit import timeit
>>> timeit("[]")
0.040084982867934334
>>> timeit("list()")
0.17704233359267718
>>> timeit("{}")
0.033620194745424214
>>> timeit("dict()")
0.1821558326547077
and for non-empty:
>>> timeit("[1,2,3]")
0.24316302770330367
>>> timeit("list((1,2,3))")
0.44744206316727286
>>> timeit("list(foo)", setup="foo=(1,2,3)")
0.446036018543964
>>> timeit("{'a':1, 'b':2, 'c':3}")
0.20868602015059423
>>> timeit("dict(a=1, b=2, c=3)")
0.47635635255323905
>>> timeit("dict(bar)", setup="bar=[('a', 1), ('b', 2), ('c', 3)]")
0.9028228448029267
Also, using the bracket notation lets you use list and dictionary comprehensions, which may be reason enough.
Method 2
In my opinion [] and {} are the most pythonic and readable ways to create empty lists/dicts.
Be wary of set()‘s though, for example:
this_set = {5}
some_other_set = {}
Can be confusing. The first creates a set with one element, the second creates an empty dict and not a set.
Method 3
The dict literal might be a tiny bit faster as its bytecode is shorter:
In [1]: import dis
In [2]: a = lambda: {}
In [3]: b = lambda: dict()
In [4]: dis.dis(a)
1 0 BUILD_MAP 0
3 RETURN_VALUE
In [5]: dis.dis(b)
1 0 LOAD_GLOBAL 0 (dict)
3 CALL_FUNCTION 0
6 RETURN_VALUE
Same applies to the list vs []
Method 4
Be careful list() and [] works differently:
>>> def a(p): ... print(id(p)) ... >>> for r in range(3): ... a([]) ... 139969725291904 139969725291904 139969725291904 >>> for r in range(3): ... a(list()) ... 139969725367296 139969725367552 139969725367616
list() always creates a new object on the heap, but [] can reuse memory cells in many situations.
Method 5
IMHO, using list() and dict() makes your Python look like C. Ugh.
Method 6
In the case of difference between [] and list(), there is a pitfall that I haven’t seen anyone else point out.
If you use a dictionary as a member of the list, the two will give entirely different results:
In [1]: foo_dict = {"1":"foo", "2":"bar"}
In [2]: [foo_dict]
Out [2]: [{'1': 'foo', '2': 'bar'}]
In [3]: list(foo_dict)
Out [3]: ['1', '2']
Method 7
There is no such difference between list() and [] but if you use it with iterators, it gives us:
nums = [1,2,3,4,5,6,7,8]
In: print([iter(nums)])
Out: [<list_iterator object at 0x03E4CDD8>]
In: print(list(iter(nums)))
Out: [1, 2, 3, 4, 5, 6, 7, 8]
Method 8
A difference between list() and [] not mentioned by anyone, is that list() will convert, for example a tuple, into a list. And [] will put said tuple into a list:
a_tuple = (1, 2, 3, 4) test_list = list(a_tuple) # returns [1, 2, 3, 4] test_brackets = [a_tuple] # returns [(1, 2, 3, 4)]
Method 9
there is one difference in behavior between [] and list() as example below shows. we need to use list() if we want to have the list of numbers returned, otherwise we get a map object! No sure how to explain it though.
sth = [(1,2), (3,4),(5,6)] sth2 = map(lambda x: x[1], sth) print(sth2) # print returns object <map object at 0x000001AB34C1D9B0> sth2 = [map(lambda x: x[1], sth)] print(sth2) # print returns object <map object at 0x000001AB34C1D9B0> type(sth2) # list type(sth2[0]) # map sth2 = list(map(lambda x: x[1], sth)) print(sth2) #[2, 4, 6] type(sth2) # list type(sth2[0]) # int
Method 10
A box bracket pair denotes one of a list object, or an index subscript, like my_List[x].
A curly brace pair denotes a dictionary object.
a_list = ['on', 'off', 1, 2]
a_dict = { on: 1, off: 2 }
Method 11
It’s mainly a matter of choice most of the time. It’s a matter of preference.
Note however that if you have numeric keys for example, that you can’t do:
mydict = dict(1="foo", 2="bar")
You have to do:
mydict = {"1":"foo", "2":"bar"}
All methods was sourced from stackoverflow.com or stackexchange.com, is licensed under cc by-sa 2.5, cc by-sa 3.0 and cc by-sa 4.0