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Guys I was hoping someone could help me understand what exactly is happening in this piece of code. Specifically when the for loop runs I can't quite get my head around why it doesn't keep printing A's rather than what it actually does which is produce all permutations with repetition of the string ABC.

def perm(l, n, str_a):
    if len(str_a) == n:
        print str_a
    else:
        for c in l:
            perm(l, n, str_a+c)


perm("ABC", 3, "")

The output is as follows

AAA AAB AAC ABA ABB ABC ACA ACB ACC BAA BAB BAC BBA BBB BBC BCA BCB...
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Can you post your expected output? –  Rohit Jain Sep 15 '13 at 21:30
    
Wow... please be clearer next time. It took me 5 minutes to understand what you are asking. You have a code that works, but you can't understand why. Please state this clearly next time. –  Giulio Franco Sep 15 '13 at 21:37
    
I'm sorry you found my question ambiguous. I have update for output as requested. –  Franklen S Sep 15 '13 at 21:43

3 Answers 3

up vote 2 down vote accepted
  1. When you call perm("ABC", 3, ""), the else clause is executed (because len("") != 3).
  2. This result in the calls perm("ABC", 3, "A"), perm("ABC", 3, "B") and perm("ABC", 3, "C"). Let's see what happens with the first one:
  3. Again, the else is executed, resulting in the function calls perm("ABC", 3, "AA"), perm("ABC", 3, "AB") and perm("ABC", 3, "AC").
  4. The same thing happens with the other function calls from step 2 (you get the idea).
  5. Let's look at perm("ABC", 3, "AA"): When called, the else is executed yet again --> perm("ABC", 3, "AAA"), perm("ABC", 3, "AAB") and perm("ABC", 3, "AAC").
  6. In these calls, the expression len(str_a) finally is == 3, which means that str_a will be printed.
  7. And so on, until CCC.
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This has really cleared this up for me. I understand now how the permutations are being generated. Thank you very much. –  Franklen S Sep 15 '13 at 22:18

It does not keep printing 'A's, because, after 3 recursions, it will have formed the string "AAA". Then, the line print str_a will be executed, as the condition len(str_a) == n will be verified.

After that, the execution will go back to the callee function, which was inside the c loop. c had value "A". At the following iteration, c will get value "B", and perm("ABC", 3, "AAB") will be invoked, printing "AAB", and so on.

Maybe the recursion graph could clearen things up (it's incomplete, because it's big)Recursion graph (incomplete)

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Thank you very much for your help, the graph was extremely useful. I'll try to make my question clearer in future. –  Franklen S Sep 15 '13 at 22:19

I have no idea what you are trying to do, but maybe a little bit of debug output would help you figure it out. Try this:

def perm(iter, l, n, str_a):
    print "starting iteration {0}: l='{1}', n='{2}', str_a='{3}'".format(
        iter, l, n, str_a)
    if len(str_a) == n:
        print str_a
    else:
       for c in l:
           perm(iter+1, l, n, str_a+c)

perm(1, "ABC", 3, "")
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