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I m looking for an algorithm that give all possible combinations of letters

Let me explain better. If i have

base-letters = ["a","b","c"];
depth = 2; //max chars allowed

then the expected result would be these 12 elements (3^1 + 3^2 = 12):

["a", "b", "c", "aa","ab","ac","ba","bb","bc","ca", "cb", "cc"]

If i had a depth value = 3, i would expect (3^1) + (3^2) + (3^3) = 39 elements

["a", "b", ... , "aa", "ab", ... , "aaa", "aab", ..., "aba", ...]

Now, if i understood correctly permutation algorithm is similar, but doesn't consider duplicated letters (like "aa","bb","aab", "aba"), and the variable depth value (it could be different then base-letters length).

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marked as duplicate by Alma Do, David Eisenstat, anatolyg, 500 - Internal Server Error, VMai Aug 18 '14 at 4:40

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
This can b done using recursion. –  user1990169 Aug 14 '14 at 14:12

3 Answers 3

You can define a recursive function F(s) which takes a string s of length less than or equal to your maximum length, and start by calling F(s) with s equal to the empty string. The function F computes the length of the string and if it is equal to the maximum length, it prints the string s and returns. If the length of the string is less than the maximum, then F(s) prints out the string s and then iterates over all possible letters in the alphabet and for each letter, it adds the letter to the end of string s to produce a string s' of length one more, and then calls F(s'). This has very low memory usage and is essentially the fastest method possible, at least in asymptotic terms.

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In Python, use itertools's permutations function (a code recipe is included if you need to translate the code to your native language)

>>> import itertools
>>> base_elements = ['a', 'b', 'cow']
>>> max_depth = 2
>>> result = [''.join(element) for element in itertools.chain.from_iterable([itertools.permutations(base_elements, depth) for depth in range(1, max_depth+1)])]
>>> print(result)
['a', 'b', 'cow', 'ab', 'acow', 'ba', 'bcow', 'cowa', 'cowb']

If you want only unique values, then rather than concatenating the each output element into a string, create a set. This removes duplicates. Then remove duplicates from the final set.

>>> result = frozenset([frozenset(element)
                        for element in itertools.chain.from_iterable(
                          [itertools.permutations(base_elements, depth)
                           for depth in range(1, max_depth+1)]
                        )])

Or more cleanly,

def permutations(base_elements, max_depth):
    result = set()
    for depth in range(1, max_depth+1):
        for element in itertools.permutations(base_elements, depth):
            result.add(frozenset(element))
    return result
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It seems this code will give you what you need:

def all_strs(iterable, depth):
    results = []
    if depth==1:
        for item in iterable:
            results.append(str(item))
        return results
    for item in iterable:
        for s in all_strs(iterable, depth-1):
            results.append(str(item) + s)
    return results

if __name__ == "__main__":
    print all_strs('abc', 2)
    print all_strs([1, 2, 3], 3)

    s = 'abc'
    results = []
    for i in range(len(s)):
        results += print all_strs(s, i+1)
    print results

the output is: ['aa', 'ab', 'ac', 'ba', 'bb', 'bc', 'ca', 'cb', 'cc']

['111', '112', '113', '121', '122', '123', '131', '132', '133', '211', '212', '213', '221', '222', '223', '231', '232', '233', '311', '312', '313', '321', '322', '323', '331', '332', '333']

['a', 'b', 'c', 'aa', 'ab', 'ac', 'ba', 'bb', 'bc', 'ca', 'cb', 'cc', 'aaa', 'aab', 'aac', 'aba', 'abb', 'abc', 'aca', 'acb', 'acc', 'baa', 'bab', 'bac', 'bba', 'bbb', 'bbc', 'bca', 'bcb', 'bcc', 'caa', 'cab', 'cac', 'cba', 'cbb', 'cbc', 'cca', 'ccb', 'ccc']

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