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I have this code

list = ['a','b','c']

if 'b' in list:
   return "found it"
return "not found"

Now, how does this work? Does it traverse the whole list comparing the element? Does it use some kind of hash function?

Also, is it the same for this code?

list.index('b')
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5 Answers

up vote 16 down vote accepted

in uses the method __contains__. Each container type implements it differently. For a list, it uses linear search. For a dict, it uses a hash lookup.

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Thanks, great answer. I'm new in Python and did not know about contains –  santiagobasulto Aug 25 '11 at 15:24
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Python Wiki states that val in list has O(n) average time complexity. This implies linear search. I expect list.index(val) to be the same.

After all, list is, well, a list. If you want hash tables, consider using set or dict.

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Thank you, good wiki page, didn't know it. –  santiagobasulto Aug 25 '11 at 15:28
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The comparison is evaluated once for every item in the list.

See http://effbot.org/zone/python-list.htm for more information on Python lists (and list comprehensions as you have posted).

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Both in and list.index() loop over all elements and have therefore a linear runtime. In addition to the intuitive logic (it has to be this way since a list is just a dynamic array), you can verify that by looking at the C implementation of list_contains (in) and listindex.

For example, the __contains__ routine is implemented as simple as:

static int
list_contains(PyListObject *a, PyObject *el)
{
    Py_ssize_t i;
    int cmp;

    for (i = 0, cmp = 0 ; cmp == 0 && i < Py_SIZE(a); ++i)
        cmp = PyObject_RichCompareBool(el, PyList_GET_ITEM(a, i),
                                           Py_EQ);
    return cmp;
}
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Here is the disassembly:

>>> from dis import dis
>>> def foo():
...     a = ['a', 'b', 'c']
...     if 'b' in a:
...             print "Found it!"
... 
>>> dis(foo)
  2           0 LOAD_CONST               1 ('a')
              3 LOAD_CONST               2 ('b')
              6 LOAD_CONST               3 ('c')
              9 BUILD_LIST               3
             12 STORE_FAST               0 (a)

  3          15 LOAD_CONST               2 ('b')
             18 LOAD_FAST                0 (a)
             21 COMPARE_OP               6 (in)
             24 POP_JUMP_IF_FALSE       35

  4          27 LOAD_CONST               4 ('Found it!')
             30 PRINT_ITEM          
             31 PRINT_NEWLINE       
             32 JUMP_FORWARD             0 (to 35)
        >>   35 LOAD_CONST               0 (None)
             38 RETURN_VALUE  

The in-operator calls __contains__ in the COMPARE_OP instruction. You can see it in action here:

class X(object):
    def __init__(self, elements):
        self.elements = elements
    def __contains__(self, element):
        print "Called __contains__"
        return element in self.elements

x = X(['a', 'b', 'c'])
if 'b' in x:
    print "Found it!"

You get this output:

...
>>> x = X(['a', 'b', 'c'])
>>> if 'b' in x:
...     print "Found it!"
... 
Called __contains__
Found it!
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It's no secret that in causes __contains__ to be called. This does not answer the question how this is implemented for lists. –  Ferdinand Beyer Aug 25 '11 at 16:10
1  
@Ferdinand: Interestingly, not everyone knows that, starting with OP ("Thanks, great answer. I'm new in Python and did not know about contains") –  hughdbrown Aug 25 '11 at 19:29
    
For built-in types, it does not matter which function in calls. So, still, your "answer" does not answer this question. Not at all. Anyone who wants to add support for in in his own class should simply read the manual. It explains the behavior of every operator in detail, this is why I said that it's not a secret. There is no need to use the disassembler here! By the way, the disassembler does not provide any helpful information -- there's an opcode that executes in, d'oh, we already see this in the original code! The __contains__ magic still happens "backstage". –  Ferdinand Beyer Aug 25 '11 at 22:38
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