194

What is the "one [...] obvious way" to add all items of an iterable to an existing set?

5 Answers 5

270

You can add elements of a list to a set like this:

>>> foo = set(range(0, 4))
>>> foo
set([0, 1, 2, 3])
>>> foo.update(range(2, 6))
>>> foo
set([0, 1, 2, 3, 4, 5])
3
  • 2
    Just looked back at my interpreter session and I actually tried this, but thought that it had added the whole list as an element of the set because of the square brackets in the representation of the set. I had never noticed before that they're represented like that. Commented Oct 28, 2010 at 17:33
  • 7
    That representation allows you to paste it right back in an interactive session, because the set constructor takes an iterable as its argument. Commented Apr 5, 2013 at 7:02
  • 6
    Note that the representation is just e.g. {1, 2, 3} in Python 3 whereas it was set([1, 2, 3]) in Python 2. Commented Nov 26, 2017 at 0:04
54

For the benefit of anyone who might believe e.g. that doing aset.add() in a loop would have performance competitive with doing aset.update(), here's an example of how you can test your beliefs quickly before going public:

>\python27\python -mtimeit -s"it=xrange(10000);a=set(xrange(100))" "a.update(it)"
1000 loops, best of 3: 294 usec per loop

>\python27\python -mtimeit -s"it=xrange(10000);a=set(xrange(100))" "for i in it:a.add(i)"
1000 loops, best of 3: 950 usec per loop

>\python27\python -mtimeit -s"it=xrange(10000);a=set(xrange(100))" "a |= set(it)"
1000 loops, best of 3: 458 usec per loop

>\python27\python -mtimeit -s"it=xrange(20000);a=set(xrange(100))" "a.update(it)"
1000 loops, best of 3: 598 usec per loop

>\python27\python -mtimeit -s"it=xrange(20000);a=set(xrange(100))" "for i in it:a.add(i)"
1000 loops, best of 3: 1.89 msec per loop

>\python27\python -mtimeit -s"it=xrange(20000);a=set(xrange(100))" "a |= set(it)"
1000 loops, best of 3: 891 usec per loop

Looks like the cost per item of the loop approach is over THREE times that of the update approach.

Using |= set() costs about 1.5x what update does but half of what adding each individual item in a loop does.

0
17

You can use the set() function to convert an iterable into a set, and then use standard set update operator (|=) to add the unique values from your new set into the existing one.

>>> a = { 1, 2, 3 }
>>> b = ( 3, 4, 5 )
>>> a |= set(b)
>>> a
set([1, 2, 3, 4, 5])
5
  • 5
    Using .update has the benefit that the argument can be any iterable —not necessarily a set— unlike the RHS of the |= operator in your example.
    – tzot
    Commented Oct 28, 2010 at 21:31
  • 1
    Good point. It's just an aesthetic choice since set() can convert an iterable into a set, but the number of keystrokes are the same.
    – gbc
    Commented Oct 28, 2010 at 23:22
  • I have never seen that operator before, I'll enjoy using it when it pops up in the future; thanks!
    – eipxen
    Commented Aug 1, 2011 at 20:02
  • 1
    @eipxen: There's | for union, & for intersection, and ^ for getting elements that are in one or the other but not both. But in a dynamically typed language where it's sometimes difficult to read the code and know the types of objects flying around, I feel hesitant to use these operators. Someone who doesn't recognize them (or perhaps doesn't even realize that Python allows for operators like these) could be confused and think some weird bitwise or logical operations are going on. It'd be nice if these operators worked on other iterables, too... Commented Mar 30, 2015 at 19:00
  • Ran some time tests on this versus .update() and add individual elements in a loop. Found that .update() was faster. I added my results to this existing answer: stackoverflow.com/a/4046249/901641 Commented Mar 30, 2015 at 19:39
8

Just a quick update, timings using python 3:

#!/usr/local/bin python3
from timeit import Timer

a = set(range(1, 100000))
b = list(range(50000, 150000))

def one_by_one(s, l):
    for i in l:
        s.add(i)    

def cast_to_list_and_back(s, l):
    s = set(list(s) + l)

def update_set(s,l):
    s.update(l)

results are:

one_by_one 10.184448844986036
cast_to_list_and_back 7.969255169969983
update_set 2.212590195937082
0

Use list comprehension.

Short circuiting the creation of iterable using a list for example :)

>>> x = [1, 2, 3, 4]
>>> 
>>> k = x.__iter__()
>>> k
<listiterator object at 0x100517490>
>>> l = [y for y in k]
>>> l
[1, 2, 3, 4]
>>> 
>>> z = Set([1,2])
>>> z.update(l)
>>> z
set([1, 2, 3, 4])
>>> 

[Edit: missed the set part of question]

1
  • 3
    I don't see any sets? Am I missing something? Commented Oct 28, 2010 at 17:25

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