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#Calculates to the index position of a fib number.
def f3(n):
    if n < 2:
        return n
    return f3(n-2) + f3(n-1)

The function only accepts one argument, yet two are being sent in the return, yet, it works! What's happening here?

If I return f3(n-3), the function breaks down. What effect does the concatenation have?

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3 Answers 3

Addition results in a single value.

>>> 1 + 2
3
>>> [1] + [2]
[1, 2]
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Python evaluates the expression f3(n-2) + f3(n-1) before returning it, so its actually returning the value of them combined. The same is the case for f3(n-2), its first evaluating n-2 and then passing it as a value to f3().

The number of return arguments has nothing to do with the number of arguments a function takes as input.

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When I try to use (n-3) the func breaks down. Why do I have to concatenate two in the return? –  pythondjango Apr 1 '12 at 21:22
    
@pythondjango: Where do you see concatenation? There's no concatenation here. –  cha0site Apr 1 '12 at 21:24
1  
When you only use f3(n-3) instead of f3(n-2) + f3(n-1)? Its because of the way the Fibonacci recursion works. I think this might be of help understanding how it works: ozark.hendrix.edu/~burch/csbsju/cs/160/notes/29/0.html . –  veiset Apr 1 '12 at 21:26
    
return f3(n-2) + f3(n-1) –  pythondjango Apr 1 '12 at 21:27
    
@veiset Thanks. You're the only one who understood the question. –  pythondjango Apr 1 '12 at 21:38

The line f3(n-2) + f3(n-1) is returning only one value, the result of calculating f3 for the input n-2 and then adding that value to the result of calculating f3 for the input n-1

In Python, the mechanism for returning multiple values from a function is by packing them inside a tuple and then extracting them at the time of invoking the function (not the case in your question!) For example:

def multivalue(x, y)
    return (x, y)

a, b = multivalue(5,10)
# here a holds 5, and b holds 10
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