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I am generating all possible three letters keywords e.g. aaa, aab, aac.... zzy, zzz below is my code:

alphabets = ['a', 'b', 'c', 'd', 'e', 'f', 'g', 'h', 'i', 'j', 'k', 'l', 'm', 'n', 'o', 'p', 'q', 'r', 's', 't', 'u', 'v', 'w', 'x', 'y', 'z']

keywords = []
for alpha1 in alphabets:
    for alpha2 in alphabets:
        for alpha3 in alphabets:
            keywords.append(alpha1+alpha2+alpha3)

Can this functionality be achieved in a more sleek and efficient way?

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up vote 39 down vote accepted
keywords = itertools.product(alphabets, repeat = 3)

See the documentation for itertools.product. If you need a list of strings, just use

keywords = [''.join(i) for i in itertools.product(alphabets, repeat = 3)]

alphabets also doesn't need to be a list, it can just be a string, for example:

from itertools import product
from string import ascii_lowercase
keywords = [''.join(i) for i in product(ascii_lowercase, repeat = 3)]

will work if you just want the lowercase ascii letters.

share|improve this answer
    
wow, thats pretty nice. – John Ballinger Aug 16 '11 at 5:49
    
excellent, just a single line of code wao! thanks – Aamir Adnan Aug 16 '11 at 5:52
2  
that's why i love python.. – Aamir Adnan Aug 16 '11 at 5:58
4  
Since there are 26 ** 3 == 17576 items in the keywords list, it is no problem having the keywords list in-memory, like you do for the list of strings. For larger variations however, consider using a generator expression instead: keywords = (''.join(i) for i in itertools.product(alphabets, repeat=3)). – Lauritz V. Thaulow Aug 16 '11 at 7:20
1  
Yep, if you need strings -- but not a list -- use that (or with string addition instead of join, as in the other answers). – agf Aug 16 '11 at 7:29

You could also use map instead of the list comprehension (this is one of the cases where map is still faster than the LC)

>>> from itertools import product
>>> from string import ascii_lowercase
>>> keywords = map(''.join, product(ascii_lowercase, repeat=3))

This variation of the list comprehension is also faster than using ''.join

>>> keywords = [a+b+c for a,b,c in product(ascii_lowercase, repeat=3)]
share|improve this answer
    
thanks for useful tips – Aamir Adnan Aug 16 '11 at 6:24
    
With join you don't have to change it if you change the value of repeat -- add some cliche about premature optimization here. – agf Aug 16 '11 at 6:26
from itertools import combinations_with_replacement

alphabets = ['a', 'b', 'c', 'd', 'e', 'f', 'g', 'h', 'i', 'j', 'k', 'l', 'm', 'n', 'o', 'p', 'q', 'r', 's', 't', 'u', 'v', 'w', 'x', 'y', 'z']

for (a,b,c) in combinations_with_replacement(alphabets, 3):
    print a+b+c
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1  
This isn't actually the same. Try it with two letters -- you get 26 combinations with a as the first letter, then 25 for b, etc., down to only zz for z as the first letter. That is, you don't get both ab and ba, or to use the example in the OP, you don't get zzy, because you already got yzz. – agf Oct 6 '11 at 20:12
    
hmm, I see. Thanks for pointing that out. – Asterisk Oct 8 '11 at 9:09

You can also do this without any external modules by doing simple calculation.
The PermutationIterator is what you are searching for.

def permutation_atindex(_int, _set, length):
    """
    Return the permutation at index '_int' for itemgetter '_set'
    with length 'length'.
    """
    items = []
    strLength = len(_set)
    index = _int % strLength
    items.append(_set[index])

    for n in xrange(1,length, 1):
        _int //= strLength
        index = _int % strLength
        items.append(_set[index])

    return items

class PermutationIterator:
    """
    A class that can iterate over possible permuations
    of the given 'iterable' and 'length' argument.
    """

    def __init__(self, iterable, length):
        self.length = length
        self.current = 0
        self.max = len(iterable) ** length
        self.iterable = iterable

    def __iter__(self):
        return self

    def __next__(self):
        if self.current >= self.max:
            raise StopIteration

        try:
            return permutation_atindex(self.current, self.iterable, self.length)
        finally:
            self.current   += 1

Give it an iterable object and an integer as the output-length.

from string import ascii_lowercase

for e in PermutationIterator(ascii_lowercase, 3):
    print "".join(e)

This will start from 'aaa' and end with 'zzz'.

share|improve this answer
chars = range(ord('a'), ord('z')+1);
print [chr(a) + chr(b) +chr(c) for a in chars for b in chars for c in chars]
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