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I don't know why the following haskell source code for calculating products recursively only using addition doesn't work.

mult a b = a + mult a (b-1)

I'm always getting a stack overflow error.

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"I'm always getting a stack overflow error." Seems like you've come to the right place to ask. –  Thiago Arrais Nov 13 '09 at 20:54

4 Answers 4

You'll have to specify a termination condition, otherwise the recursion will run infinitely.

mult a 0 = 0
mult a b = a + mult a (b-1)
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What happens if b is 0?

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In short, how does it know when to stop? –  Edward KMETT Nov 13 '09 at 19:59

You could always try a more original, haskell-ish solution =P

 mult a b = sum $ take b $ repeat a
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What about mult a b = sum [ a | i <- [1..b] ] or even better mult = (*) –  Dario Nov 14 '09 at 17:15
    
Very nice Haskell example! –  TheOne Nov 14 '09 at 17:15
    
Dario the question asks how to do it with only addition.. –  TheOne Nov 14 '09 at 17:15
    
Well the question asks about recursion too –  Dario Nov 14 '09 at 17:18
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Or even haskell-ish in eta-reduced form, without formal parameters :) - mult = (sum.).(.repeat).take –  Martin Jonáš Nov 16 '09 at 18:51

with any recursive function, there should be at least 2 cases.

a base case and a recursive case.

to make this more explicit, the use of the case (like the cases I mentioned above) statement is nice and easy to understand.

mult a b = case b of
    0 -> 0                -- the base case, multiply by 0 = 0
    _ -> a + mult a (b-1) -- recursive addition case (_ matches anything
                          -- but 0 is already covered)
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To be exact, _ matches anything, but if b is 0 it's already matched so we'd never get to the _ case. –  Chris Lutz Nov 14 '09 at 3:54

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