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I need to count the number of times recursion in a python program. So basically I need a static variable kind of thing (like in C) which can count the number of times the function is called.

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5 Answers 5

up vote 9 down vote accepted

Just pass a counter with the recursion

def recur(n, count=0):
    if n == 0:
        return "Finished count %s" % count
    return recur(n-1, count+1)

Or im sure there is some fancy decorator, Im gonna investigate that now...

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You can define a Counter callable class with which you can wrap any function:

class Counter(object) :
    def __init__(self, fun) :
        self._fun = fun
        self.counter=0
    def __call__(self,*args, **kwargs) :
        self.counter += 1
        return self._fun(*args, **kwargs)

def recur(n) :
    print 'recur',n
    if n>0 :
        return recur(n-1)
    return 0

recur = Counter(recur)

recur(5)

print '# of times recur has been called =', recur.counter

The advantage here being that you can use it for any function, without having to modify it's signature.

EDIT: Thanks to @Tom Zych for spotting a bug. The recur name has to be masked by the callable class instance for this to work. More info on decorators here:

http://wiki.python.org/moin/PythonDecoratorLibrary#Counting_function_calls

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Nice idea, but it outputs 1 for me. Isn't it only the first call that goes through Counter? I don't see a way to make the recursive calls go through Counter without the wrapped function being aware of it. –  Tom Zych Mar 27 '11 at 11:01
    
@Tom Zych Thanks for spotting that! I've fixed it now. –  juanchopanza Mar 27 '11 at 11:53
    
Oh, of course. Shadow the function name. Very nice. –  Tom Zych Mar 27 '11 at 12:32
    
Or rather, reassign the function name. –  Tom Zych Mar 27 '11 at 13:26

One way would be to use a list containing one element that keeps a count of how many times the function was entered.

>>> counter=[0]
>>> def recur(n):
...     counter[0]+=1
...     if n==0:
...             return -1
...     else:
...             return recur(n-1)
... 
>>> recur(100)
-1
>>> print counter[0]
101
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Another method using global:

>>> def recur(n):
...     global counter
...     counter+=1
...     if n==0:
...         return -1
...     else:
...         return recur(n-1)
... 
>>> counter = 0
>>> recur(100)
-1
>>> print counter
101
>>> 
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>>> def func(n, count=0):
...     if n==0:
...             return count
...     else:
...             return func(n-1, count+1)
... 
>>> func(100)
100
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