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I want to replace my function foo with foo2(non-resursion), but foo2 works incorrect. What's wrong with foo2?

def foo(n, k=0,s=0):
    if k < n:
        for i in xrange(k==0,10):
            foo(n, k+1, 10*s + i)
    else: 
        print s,

def foo2(n):
    s=0
    for k in xrange(n):
        st = s
        for i in xrange(k==0, 10):
            st = 10* st + i
        print st
foo(3)
foo2(3)

Updated

If I replace 10*s + i with s + i**3, How can I rewrite it?

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1  
What does foo do? –  Tichodroma Nov 3 '13 at 13:58

1 Answer 1

up vote 3 down vote accepted

foo prints 10n-1 ~ 10n-1; Iterate xrange(10**(n-1), 10**n).

def foo2(n):
    for s in xrange(10**(n-1), 10**n):
        print s,

Following is a translation of the recursive funciton using stack:

def foo2(n):
    stack = [(0, 0)] # corresponding to (..., k=0, s=0)
    while stack:
        k, s = stack.pop(0)
        if k < n:
            for i in xrange(k==0, 10):
                stack.append((k+1, 10*s + i))
        else:
            print s,

NOTE To implement strictly equivalent iterative version, you should also push iterator (xrange...); consume only one item at a time in a loop.

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