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I'm trying to find the order number an item in list for example:

lst = [ a, b, [c,d], e, f]

order([c,d]) = 2
order('e') = 3

I think of this way :

def order(item,lst):
    if lst[0] == item:
       return n
    else:
       return order(item,lst[0:])

But it gives error (related recurcion depth). What is my fault? Or how can i do it?

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Take a look at pythontutor to see what your program is doing. –  Eric Jan 20 '13 at 12:14
1  
What is n in your example? –  Burhan Khalid Jan 20 '13 at 12:18
    
i have written it in the wrong way, should it be 0? I dont think that is the way. I just could not find –  Ezgi Akçora Jan 20 '13 at 12:20
    
What should it be? Think about what you are trying to return from the function. –  Burhan Khalid Jan 20 '13 at 12:20
    
for example if it is the first element it should return 0. –  Ezgi Akçora Jan 20 '13 at 12:21

4 Answers 4

Why not just use .index()?

In [1]: l = [ a, b, [c,d], e, f]
In [2]: l.index([c,d])
Out[2]: 2
In [4]: l.index(e)
Out[4]: 3

If you really need a recursive function, use the following:

def order(item, l, n=0):
    if l:
        if l[0] == item:
            return n
        elif len(l) >= 2: # for python 2, use "else:"
            return order(item, l[1:], n+1)

And if recursion is not a must but you can't use .index(), use a for loop:

def order(item, l):
    for i,v in enumrate(l):
        if v == item:
            return i

With both methods, just call order([c,d], lst)

share|improve this answer
    
-1 "don't use if not l: since it will only check if l is not False and l is not None and l is not 0". Wrong. It also checks len(l) != 0. –  Eric Jan 20 '13 at 12:40
    
@Eric Right, fixed. I guess we all learn something new everyday :P –  user1632861 Jan 20 '13 at 12:42
    
Which makes your if len(l) >= 2 redundant, since that condition is implied/enforced by the first ifs –  Eric Jan 20 '13 at 12:44
    
@Eric You're wrong on this one. Try what would happen to order(3, [5]). The first check for l would be True and an index error would raise on return order(item, l[1:], n+1). –  user1632861 Jan 20 '13 at 12:45
1  
Wrong again. You can take a slice beyond the size of a list without an error: [1, 2, 3][9001:] == [] –  Eric Jan 20 '13 at 12:48
  1. Your function returns n in the base case, yet never assigns anything to it. If the thing you are looking for is in the first element, it should return 0.
  2. Your recursive case passes the whole list, which is why the recursive never ends. If you passed lst[1:], then lists would get smaller with each call, but you'd need to add 1 to the result (in effect, everything is shifted down 1 place in each recursive call).
share|improve this answer
    
Passing lst[1:] will result in an empty list being passed on the last cycle, which will then error on lst[0]. –  Eric Jan 20 '13 at 12:17
    
Original spec did not define what to do if item wasn't in list, I (perhaps incorrectly) assumed item was known it be in the list. –  Scott Hunter Jan 20 '13 at 12:21
def order(item, lst,n=0):
    if not lst:
        return None
    elif lst[0] == item:
        return n
    else:
        return order(item, lst[1:],n+1)

lst = ['a', 'b', ['c', 'd'], 'e', 'f']

order(['c', 'd'], lst)

out:

2
share|improve this answer
    
Yes!!!!! Thanks soooooo much! –  Ezgi Akçora Jan 20 '13 at 12:26

Python has a builtin function to do this:

lst = ['a', 'b', ['c', 'd'], 'e', 'f']

assert lst.index(['c', 'd']) == 2
assert lst.index('e') == 3

If you want to fix your own function, you need a base case:

def order(item, lst):
    if not lst:
        return None
    elif lst[0] == item:
        return n  # You need to calculate n here. 
                  # I'm not doing your homework for you
    else:
        return order(item, lst[1:])
share|improve this answer
    
I received : NameError: global name 'n' is not defined –  Ezgi Akçora Jan 20 '13 at 12:15
    
@EzgiAkçora: That's because you never even wrote that part. I just fixed your recursion problem. What's wrong with using .index here? –  Eric Jan 20 '13 at 12:16
    
Eric, its probably a homework question and they are not "allowed" to use .index() (or they haven't been taught the method). –  Burhan Khalid Jan 20 '13 at 12:22

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