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I met a problem when I want to write a simple permutation code,

def permutation(Ori, Curr, used):
  if len(Ori) == len(Curr):
      #print Curr
      return

  for i in xrange(len(Ori)):
      if used[i]:
          continue
      used[i] = True
      Curr.append(Ori[i])
      print Curr,i," after append"
      permutation(Ori, Curr, used)    # further level
      used[i] = False
      print Curr,i," before delete"
      Curr = Curr[0:-1]               # Curr.pop() works
      print Curr,i," after delete"
  return

if __name__ == "__main__":
  used = [False]*3
  Curr = []
  permutation([1,2,3], Curr, used)

while result is not correct:

[1] 0  after append
[1, 2] 1  after append
[1, 2, 3] 2  after append
[1, 2, 3] 2  before delete
[1, 2] 2  after delete     <------
[1, 2, 3] 1  before delete <------
[1, 2] 1  after delete
[1, 2, 3] 2  after append
[1, 2, 3] 2  before delete
[1, 2] 2  after delete
[1, 2, 3] 0  before delete
[1, 2] 0  after delete
[1, 2, 2] 1  after append
[1, 2, 2] 1  before delete
[1, 2] 1  after delete
[1, 2, 3] 2  after append
[1, 2, 3] 2  before delete
[1, 2] 2  after delete

I don't know why the array has an extra number in the step I pointed out.


Sorry maybe I haven't made my question clear, I just want to know the reason why that recursion returned a list which I supposed it been shrinked. I wrote another piece of code, could anyone tell me the difference between the two commented sentence?(A = A[0:-1] and A.pop())

def f(A):
     if(len(A) == 10):
         return
     A.append('a')
     f(A)
     print A
 #   A = A[0:-1]                             
 #   A.pop()
     return

 if __name__ == "__main__":
    f([])
share|improve this question

closed as too localized by Neil Butterworth, Josh Caswell, Steve Mayne, Ryan Bigg, user7116 Jun 8 '11 at 21:12

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

1  
you will want to use the code-formatting feature on stackoverflow... unfortunately most likely this question will be closed before you can edit your answer –  ninjagecko Jun 8 '11 at 7:04
1  
additionally you may prefer codereview.stackexchange.com ; questions may be closed if they are too localized and cannot help others in similar situations. you may want to look at msmvps.com/blogs/jon_skeet/archive/2010/08/29/… . For one thing, there are no comments and no specification, so no one knows what your intent with the function or parameters is –  ninjagecko Jun 8 '11 at 7:05
    
after posting any question, just look at it that 'if it will be readable/ understandable by others', if not then edit that accordingly.. –  Stuti Jun 8 '11 at 7:06
1  
Theres nothing wrong with the question-sense. A person shouldn't be discouraged to post questions, just because he doesn't know how to format it properly. Its rare but not impossible, that people are not familiar with SO culture. –  simplyharsh Jun 8 '11 at 7:13
2  
No problem I have done the same thing in my first question.Welcome to stackoverflow justcoder, try to use the {} symbol on the toolbar of asking a question when writing a code block.Good luck. –  Bastardo Jun 8 '11 at 7:15

2 Answers 2

At the line

permutation(Ori, Curr, used)    # further level

you're passing pointers to the lists, not a copy of the lists. Doing this, when permutation modifies Curr, you see the modifications in the calling context. One possible solution is to call

permutation(Ori, Curr[:], used)    # further level

which passes a copy of Curr.

Why does Curr.pop() work?

Because it modifies Curr. It really removes the element from Curr before the function returns.

Using Curr = Curr[0:-1] creates a copy of Curr without one element. The element is not removed from the original list (to which the calling context still has access). So it doesn't do practically anything because the new list without the last element is forgotten as soon as the function returns.

Another possible solution would be not to change the received Curr at all - replace

Curr.append(Ori[i])

with

Curr = Curr + [Ori[i]]
share|improve this answer

There is already a function to generate permutations:

http://docs.python.org/library/itertools.html#itertools.permutations

The example code (defined in terms of product) is the "usual" generator-based implementation in my humble opinion.

In case it is useful to think about, here is code to generate all permutations of an iterable:

def permutations(iter):
    """
        >>> print(list( permutations(range(3)) ))
        [[0, 1, 2], [0, 2, 1], [1, 0, 2], [1, 2, 0], [2, 0, 1], [2, 1, 0]]
    """
    elements = list(iter)

    # base case
    if len(elements)==0:
        yield []

    for i,elem in enumerate(elements):
        withoutElem = elements[:i]+elements[i+1:]
        for perm in permutations(withoutElem):
            yield [elem]+perm
share|improve this answer
    
Thanks ninja, it works. But could you tell me why my code doen't work? –  justcoder Jun 8 '11 at 7:21

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