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I need to write generator which yield all posible 8 symbols strings. From array of symbols like this:

leters = ['1','2','3','4','5','6','7','8','9','0','q','w','e','r','t','y','u','i','o','p','a','s','d','f','g','h','j','k','l','z','x','c','v','b','n','m']

The skeleton looks like this:

def generator():
    """
    here algorithm
    """
    yield string

suppose to return list like this ['00000001','00000002','00000003', ......'mmmmmmmm']

Any ideas?

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1  
Just a suggestion to use a generator for this, as you will be dealing with over 2 trillion elements. itertools.permutations('abcdefgh...', 8) –  gahooa Jun 8 '11 at 18:32
    
permutations doesn't give you results with repeated elements, eg, any password with two or more 0's. –  Cosmologicon Jun 8 '11 at 18:37

3 Answers 3

up vote 3 down vote accepted

itertools.combinations() and itertools.combinations_with_replacement() return a generator

>>> letters = ['a', 'b', 'c']
>>> from itertools import combinations

I am using print() in the examples to illustrate the output. Substitute it with yield, to get a generator.

>>> for c in combinations(letters, 2): 
        print(c)
... 
('a', 'b')
('a', 'c')
('b', 'c')

>>> for c in combinations(letters, 2): 
        print(''.join(c))
... 
ab
ac
bc
>>> 

>>> for c in itertools.combinations_with_replacement(letters, 2): 
        print(''.join(c))
... 
aa
ab
ac
bb
bc
cc

If you brute force it for all 8 letter passwords containing english letters and digits, you're looking to iterate over ~ 2.8 trillion strings

EDIT If you somehow know there are no repeated elements, use permutations

>>> for c in itertools.permutations(letters, 2): 
        print(''.join(c))
... 
ab
ac
ba
bc
ca
cb

this gives you both ab and ba

For the most general brute force sequence use itertools.product() as in Cosmologicon's solution

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This only gives you words in lexicographical order, no? I don't see "ba" on the list. –  Cosmologicon Jun 8 '11 at 18:47
    
This is incorrect. You want itertools.product –  lukas Jun 11 at 15:34
itertools.product(leters, repeat=8)

EDIT: to have it give you strings rather than tuples:

def generator(leters):
    a = itertools.product(leters,repeat=3)
    while a:
        yield "".join(a.next())
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This will return a generator that spews out tupels, not strings. –  phihag Jun 8 '11 at 18:31
import itertools
itertools.combinations_with_replacement(leters, 8)

By the way, letters has two T's.

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