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I can't see what I am missing in this recursion call...

var power = function(b, e)
{
    if (e===0)
    {
       return 1;
    }
    else
    {
       return b*power(b, e-1);
    }
};

The first if statement is for catching numbers to the zero power (those always equal 1). But it's also the base case, so when e (exponent) reaches 0 the function exits and leaves me with the correct answer.

How is this returning the correct number and NOT the number 1? Every time, e is getting down to 0, but it returns the correct answer and NOT 1. Sorry I'm a noob, but I'm so confused...

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marked as duplicate by cHao, squint, Bergi, Captain Giraffe, LordT Mar 4 at 0:12

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
you've seen b * ...? –  Bergi Jun 20 '12 at 22:44
    
Good question, I wasn't able to see the answer at first, either! –  BeemerFan Apr 3 at 17:47

4 Answers 4

You have a recursive function, when it "returns 1" it then goes back up through the stack frames and multiplies 1 by all the other b variables it has stacked up. 1*b*b*b... etc.

1*anything is the identity function. It returns itself, not 1.

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Lets say you do power(2,4), it will go into the else and return 2 * power(2, 3). Before it can return, it has to evaluate the expression it's returning, so it does power(2, 3).

This goes into the else again to return 2 * power(2,2). Same deal here, it has to evaluate the expression. You keep doing this until you get to your base case where it simply returns 1. Now you go to the 2nd-from-bottom level and that can return because it will just be 2*1, so it goes to the next higher level, which will be 2*2*1 and so on until it gets to the top most level and gives you your answer.

See this SO (same question) for more explanations.

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Great! thanks for the help! Sorry this was a duplicate question, I'm brand new to stack overflow.... I'l try to search better in the future. –  erparker Jun 20 '12 at 22:58

On the stack, you'll have 1*b*b*b*b... e times. When the base case hits, the stack unwinds and you get the correct answer.

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Here is an execution example:

power = function(2, 2)

2 is different of 0, then return 2*function(2, 1)

   -> 1 is different of 0, then return 2*function(2, 0)

           -> 0 equal 0 return 1

   -> return 2*1

return 2*2*1

power = 4

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