Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a question that is consuming my brain. Let us suppose that the variable I stores a sequence, and the variable II another one, and the variable III another one too. The variable one will represent the number 1, the next 2 and the next 3; and then I have another key variable with random characters of these 3 sequences. Giving that fact, I can easily translate the characters of this key variable in the correspondent numbers. In the example, x = 'afh', than, it is the same to say that x = '123', because A OR B OR C = 1, and so on.

Now comes the complicated part:

When the key variable x is translated into numbers, each character individually, I can also return characters randomly from the result. For example: x = '123', then I can return a list like ['a','e','f'], or ['b','d','i'], especially if I use random.choice(). From this, what I couldn't figure out how to do yet is:

How can I append into a list ALL THE POSSIBLE VARIATIONS from the variables I, II, III. For example:

['adg','beh','cfi','aei','ceg',...]

I know how to print endlessly random combinations, but in this case, I get repetitions, and I don't want them. I want to append to a list exactly all the possible variations between I, II and III, because when they're translated into numbers, I can return any character from the correspondent sequence. Well, I hope my example is self-explainable. I thank you all very much for the attention!

I = 'abc' # 1
II = 'def' # 2
III = 'ghi' # 3
x = 'afh' # Random possibility: It could be an input.
L = []
LL = []

for i in range(len(x)):
    if x[i] in I:
        L.append(1)
    if x[i] in II:
        L.append(2)
    if x[i] in III:
        L.append(3)

for i in range(len(L)): # Here lies the mistery...
    if L[i] == 1:
        LL.append(I) 
    if L[i] == 2:
        LL.append(II)
    if L[i] == 3:
        LL.append(III)

print L
print LL

The output is:

[1, 2, 3]

['abc', 'def', 'ghi']
share|improve this question
    
More examples on "all possibilities"? I understand the translation from x to [1,2,3] and vice versa. –  CppLearner Dec 28 '12 at 5:29

3 Answers 3

up vote 1 down vote accepted

Here's how I would rewrite your code. Lengthy if statements like yours are a big code smell. I put the sequences into a tuple and used a single loop. I also replaced the second loop with a list comprehension.

By the way, you could also simplify the indexing if you used zero based indexing like a sensible person.

I = 'abc' # 1
II = 'def' # 2
III = 'ghi' # 3
x = 'afh' # Random possibility: It could be an input.
L = []
LL = []

lists = I, II, III

for c in x:
    for i, seq in enumerate(lists):
        if c in seq:
            L.append(i+1)

LL = [lists[i-1] for i in L]

print L
print LL

Also, be sure to check out the itertools module, and in particular the product function. It's not clear exactly what you mean, but product gives you all combinations of an item from each of a list of sequences.

share|improve this answer
    
Thank you very much! I'll check it out :). I was trying to do this without importing anything all the time, really really puzzling. –  Ericson Willians Dec 28 '12 at 5:29
    
Very interesting!!! I'll take some time to fully understand your advanced way of rewriting my code, really good! Thank you! I'll check it for sure.. –  Ericson Willians Dec 28 '12 at 5:35

Thank you very much Antimony! The answer is exactly product() from itertools. The code with it is bloody far more simple:

from itertools import *

I = 'abc' # 1
II = 'def' # 2
III = 'ghi' # 3

IV = product(I,II,III)

for i in IV:
    print i

And the output is exactly what I wanted, every possible combination:

('a', 'd', 'g')
('a', 'd', 'h')
('a', 'd', 'i')
('a', 'e', 'g')
('a', 'e', 'h')
('a', 'e', 'i')
('a', 'f', 'g')
('a', 'f', 'h')
('a', 'f', 'i')
('b', 'd', 'g')
('b', 'd', 'h')
('b', 'd', 'i')
('b', 'e', 'g')
('b', 'e', 'h')
('b', 'e', 'i')
('b', 'f', 'g')
('b', 'f', 'h')
('b', 'f', 'i')
('c', 'd', 'g')
('c', 'd', 'h')
('c', 'd', 'i')
('c', 'e', 'g')
('c', 'e', 'h')
('c', 'e', 'i')
('c', 'f', 'g')
('c', 'f', 'h')
('c', 'f', 'i')
share|improve this answer
    python 3.2


    [(i,v,c) for i in I for v in II for c in III]
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.