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I am trying to implement a simple functional language for automatic program synthesis. The data structure is a graph of functions and values, which compiles down to javascript. The following graph should be a fold function. funcApp nodes are connected to a function node and a number of value nodes, and it applies the function to the values. arg0 is the list, arg1 is an initial value (z) arg2 is the function to be applied.

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It is equivalent to the folloiwng scheme definition (although my 'language' is not Scheme, it is the graph)

(define (foldr f z xs)
   (if (null? xs)
       z
       (f (car xs) (foldr f z (cdr xs)))))

The problem is that there are since there are no special operators, everything, in particular if is just a normal function. In this form, the program never terminates and instead reaches the maximum stack depth, since the else clause is always computed.

I presume this problem is solved in some languages by lazy evaluation. So my questions are: is there functional version of fold that will not have this infinite recursion 2) where to begin thinking about applying lazy evaluation to a simple language such as this, if necessary.

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if is a special form in Scheme, so the else expression is not always evaluated. What's the question here? –  Niklas B. Apr 15 '12 at 22:13
    
I know that is the case for Scheme, and I think I stated my questions quite explicitly in the last paragraph –  zenna Apr 15 '12 at 22:20
    
I don't understand the first question. The answer to 2) would be "handle if specially". –  Niklas B. Apr 15 '12 at 22:24
    
"is there functional version of fold that will not have this infinite recursion" Am I just stupid or does this have nothing to do with lazy evaluation / strict vs. non-strict? –  Niklas B. Apr 15 '12 at 22:26
1  
@zenna: First of all, non-strict is not the same as lazy. Second, Scheme solves this by just handling if differently than other function calls (this is called a special form). You don't need full-blown lazy evaluation for that, like Haskell has (although you could implement if-then-else as a simple function in Haskell). The statement by sepp that you can't write fold if you don't have a lazy if was not quite correct (and he deleted that comment already): You can emulate the behaviour by supplying lambdas to the if and calling the result. –  Niklas B. Apr 15 '12 at 22:41

2 Answers 2

I think it's pretty uncommon to evaluate under binders (and, in particular, to evaluate the body of lambdas), so I think the standard solution to lazifying a strict language is to introduce a lambda. I don't know the scheme syntax, but in Haskell syntax, if you wanted x to be a lazy parameter to a strict function f, you might write something like f (\() -> x) (and modify f appropriately to expect such lambdas, and call them at the moment you want to un-lazy them).

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Scheme syntax would be fairly similar to the Haskell syntax, (λ () x) is a thunk, and surrounding a thunk in parens "calls" it, e.g. (someThunk) –  Dan Burton Apr 16 '12 at 19:59

You could compile both branches of an if-expression into thunks, and call the appropriate thunk based on the condition. It wouldn't surprise me if the formal definition of scheme is written that way.

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